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<title>Designing an amplifier for maximum gain (Gmax) at a given frequency
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<p class=3DMsoBodyText><o:p>&nbsp;</o:p></p>

<p class=3DMsoBodyText><span style=3D'font-size:24.0pt'>A Unique Design Too=
l for
Improving the Input Match of Low Noise Amplifiers<o:p></o:p></span></p>

<p class=3DMsoBodyText><span style=3D'font-size:10.0pt'><o:p>&nbsp;</o:p></=
span></p>

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</o:p></span></p>

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style=3D'mso-element:field-separator'></span><![endif]--><span style=3D'mso=
-no-proof:
yes'>1</span><!--[if supportFields]><span style=3D'mso-element:field-end'><=
/span><![endif]-->,
Low Noise Amplifier (LNA)</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>This article will describe the methods and mechanisms =
for
trading excess output return loss for improved input return loss while
maintaining low noise figure (NF) in a low noise amplifier (LNA) design.<sp=
an
style=3D'mso-spacerun:yes'>&nbsp; </span>Other methods for improving LNA in=
put
match, such as trading noise match for input match or employing series nega=
tive
feedback [1], sacrifice gain in the process.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>While gain reduction may also be t=
he
result of trading output match for input match, there is at least the
opportunity for maintaining the gain approximately constant during the proc=
ess
since matching gain lost at the output can be picked up by the improvement =
in
input match.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>Figure 1 is constructed to clarify the meaning of many=
 of
the important design parameters.<span style=3D'mso-spacerun:yes'>&nbsp;
</span>These are impedances or reflection coefficients as seen by looking in
either direction across the device (input and output) interface planes.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>Impedance (Z) and reflection coeff=
icient
(&#915;<span style=3D'font-family:Arial'>)</span> are shown for both direct=
ions
at each plane.<span style=3D'mso-spacerun:yes'>&nbsp; </span>Z and &#915; a=
re
related to each other through a given reference impedance (Z<sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>R</span>=
</sub>)
according to the formulas [2][3]:</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>Equation 1)<span style=3D'mso-spacerun:yes'>&nbsp; </s=
pan>&#915;<span
style=3D'font-family:Arial'> =3D (Z &#8211; Z</span><sub><span style=3D'fon=
t-family:
Helvetica;mso-bidi-font-family:Arial'>R</span></sub><span style=3D'font-fam=
ily:
Arial'>*)/(Z + Z</span><sub><span style=3D'font-family:Helvetica;mso-bidi-f=
ont-family:
Arial'>R</span></sub><span style=3D'font-family:Arial'>) =3D (Z &#8211; Z</=
span><sub><span
style=3D'font-family:Helvetica;mso-bidi-font-family:Arial'>0</span></sub><s=
pan
style=3D'font-family:Arial'>)/(Z + Z</span><sub><span style=3D'font-family:=
Helvetica;
mso-bidi-font-family:Arial'>0</span></sub><span style=3D'font-family:Arial'=
>)</span>
for <span style=3D'font-family:Arial'>Z</span><sub><span style=3D'font-fami=
ly:Helvetica;
mso-bidi-font-family:Arial'>R</span></sub><span style=3D'font-family:Helvet=
ica;
mso-bidi-font-family:Arial'> =3D Z<sub>0</sub> </span>(real).</p>

<p class=3DMsoNormal>Equation 2)<span style=3D'mso-spacerun:yes'>&nbsp; </s=
pan><span
style=3D'font-family:Arial'>Z</span><span style=3D'font-family:Helvetica;
mso-bidi-font-family:Arial'> =3D Z<sub>0</sub> (1 + </span>&#915;<span
style=3D'font-family:Arial'>)/(1 &#8211; </span>&#915;<span style=3D'font-f=
amily:
Arial'>).<o:p></o:p></span></p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>In keeping with the notation of much of the literature=
 on
the subject, Z<sub><span style=3D'font-family:Times;mso-bidi-font-family:"T=
imes New Roman"'>S</span></sub>
refers to the transformed source impedance (not the generator impedance).<s=
pan
style=3D'mso-spacerun:yes'>&nbsp; </span>This is the impedance that the
transistor sees looking into the input matching network.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>Z<sub><span style=3D'font-family:T=
imes;
mso-bidi-font-family:"Times New Roman"'>L</span></sub> is the transformed l=
oad
impedance that the transistor sees looking into the output matching network
(not the load impedance terminating the amplifier&#8217;s output port).<span
style=3D'mso-spacerun:yes'>&nbsp; </span>Z<sub><span style=3D'font-family:T=
imes;
mso-bidi-font-family:"Times New Roman"'>in</span></sub> and Z<sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>out</spa=
n></sub>
refer to the input and output impedances of the device/transistor (not the
impedances at the input and output ports of the amplifier).<span
style=3D'mso-spacerun:yes'>&nbsp; </span>Z<sub>1</sub> and Z<sub>2</sub> in
Figure 1 represent the generator and load impedances and are usually both Z=
0 (Z<sub>1</sub>
=3D Z<sub>2</sub> =3D Z0).</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>Designing an amplifier for maximum gain (Gmax) at a gi=
ven
frequency requires the calculation of a unique pair of termination impedanc=
es
that will provide a simultaneous conjugate match at both ports and yield the
maximum gain for the device/transistor used (provided that the device is
unconditionally stable at the given frequency).<span
style=3D'mso-spacerun:yes'>&nbsp; </span>The required terminations can be
calculated from the S-parameters of the device [3].<span
style=3D'mso-spacerun:yes'>&nbsp; </span>Likewise, a unique pair of termina=
tion
impedances determine the minimum noise figure and maximum associated gain of
the amplifier.<span style=3D'mso-spacerun:yes'>&nbsp; </span>However, in th=
is
case, noise parameters for the device are needed in addition to the
device&#8217;s S-parameters.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>In both of these design scenarios, there is no flexibi=
lity
in the choice of termination impedances because the solution set is represe=
nted
by just two points on the Smith chart.<span style=3D'mso-spacerun:yes'>&nbs=
p;
</span>If a compromise can be made in either the gain or noise figure (or b=
oth)
then the solution set of termination impedances for a given gain and noise
figure immediately becomes infinite as represented by circles in the Smith
chart instead of just two points.<span style=3D'mso-spacerun:yes'>&nbsp;
</span>This article will describe how excess output return loss can be trad=
ed
for improved input return loss while maintaining the noise figure near the
optimum value (Fmin) for the amplifier.<span style=3D'mso-spacerun:yes'>&nb=
sp;
</span>The mathematical solution is quite involved and the graphical soluti=
on
(on a Smith chart) is tedious.<span style=3D'mso-spacerun:yes'>&nbsp;
</span>Fortunately, the LINC2 program from ACS (Applied Computational Scien=
ces,
<st1:place w:st=3D"on"><st1:City w:st=3D"on">Escondido</st1:City> <st1:Stat=
e w:st=3D"on">CA</st1:State></st1:place>)
completely automates this otherwise complicated process, as will be shown
toward the end of this article.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal><b style=3D'mso-bidi-font-weight:normal'>The Noise Fig=
ure as a
Function of Zs<o:p></o:p></b></p>

<p class=3DMsoNormal>The noise figure of a linear two-port amplifier can be
formulated as a function of only four parameters: </p>

<p class=3DMsoNormal>1) Fmin, the minimum noise figure of the device/transi=
stor</p>

<p class=3DMsoNormal>2) Gamma Opt, the optimum source refection coefficient=
 for
achieving Fmin</p>

<p class=3DMsoNormal>3) Rn, the device noise resistance </p>

<p class=3DMsoNormal>4) Zs, the actual source impedance applied to the inpu=
t of
the device</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>The noise figure, F, is then calculated according to t=
he
following formula [3]:</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>Equation 3)<span style=3D'mso-spacerun:yes'>&nbsp; </s=
pan>F =3D
Fmin + (rn/gs)|Y<sub>S</sub> &#8211; Y<sub>O</sub>|^2, where Fmin is the
minimum noise figure, rn is the normalized noise resistance (rn =3D Rn/Z0),=
 Y<sub>S</sub>
is the source admittance (Y<sub>S</sub> =3D gs + j bs =3D 1/Z<sub>S</sub>),=
 and Y<sub>O</sub>
is the optimum source admittance (Y<sub>O</sub> =3D go + j bo =3D 1/Zopt).<=
/p>

<p class=3DMsoHeader style=3D'tab-stops:.5in'><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>Three of the four parameters in equation 3 are fixed
constants that are determined by the device characteristics at a given
frequency.<span style=3D'mso-spacerun:yes'>&nbsp; </span>It is interesting =
to
note that, apart from the device constants that cannot be changed by the
circuit designer, the noise figure for the amplifier is completely determin=
ed
by the source impedance Z<sub>S</sub>.<span style=3D'mso-spacerun:yes'>&nbs=
p;
</span>Since the noise figure is a function of only one variable, the circu=
it
designer has only to select a Z<sub>S</sub> value that gives the desired no=
ise
figure.<span style=3D'mso-spacerun:yes'>&nbsp; </span>Only one value of Z<s=
ub>S</sub>
(Z<sub>S</sub> =3D Zopt) gives the minimum noise figure Fmin.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>Other values of Z<sub>S</sub> yield
larger noise figures and the solution set for any noise figure larger than =
Fmin
is represented by a circle (called a noise circle) on the Smith chart.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>Many simulation programs, includin=
g LINC2,
have the ability to plot these noise figure circles as an aid in selecting =
the
source impedance that will yield the desired noise figure.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal><b style=3D'mso-bidi-font-weight:normal'>Designing for=
 Minimum
Noise and Maximum Associated Gain<o:p></o:p></b></p>

<p class=3DMsoNormal>A common approach used in the design of RF low noise a=
mplifiers
is to design an input matching network that will transform the source imped=
ance
from 50 ohms to the optimum value for minimum noise (determined by &#915;op=
t)
and then terminate the output with a conjugate match.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>This is easy to do since we can ap=
ply
&#915;<sub>S</sub> =3D &#915;opt at the input terminals of the device and
calculate the required load reflection coefficient &#915;<sub>L</sub> =3D
&#915;out* for the conjugate output match.<span style=3D'mso-spacerun:yes'>=
&nbsp;
</span>A circuit simulation can be run on the circuit shown in Figure 2 to
determine the output impedance (Zout from &#915;out) with &#915;opt as the
source termination, or the following formula can be used to calculate this
impedance directly.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>Equation 4)<span style=3D'mso-spacerun:yes'>&nbsp;
</span>&#915;<sub><span style=3D'font-family:Times;mso-bidi-font-family:"Ti=
mes New Roman"'>L</span></sub>
=3D &#915;out* =3D (S22 + S12 S21 &#915;<sub><span style=3D'font-family:Tim=
es;
mso-bidi-font-family:"Times New Roman"'>S</span></sub>/(1 &#8211; S11 &#915=
;<sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>S</span>=
</sub>))*
=3D (S22 + S12 S21 &#915;opt/(1 &#8211; S11 &#915;opt))*</p>

<p class=3DMsoNormal>Equation 5)<span style=3D'mso-spacerun:yes'>&nbsp; </s=
pan>Z<sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>L</span>=
</sub>
=3D Z0 (1 + &#915;<sub><span style=3D'font-family:Times;mso-bidi-font-famil=
y:"Times New Roman"'>L</span></sub>)/(1
&#8211; &#915;<sub><span style=3D'font-family:Times;mso-bidi-font-family:"T=
imes New Roman"'>L</span></sub>)</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>At this point we have all the necessary information to
design the low noise amplifier. Matching networks are designed to transform=
 Z0
to Zopt and Z<sub><span style=3D'font-family:Times;mso-bidi-font-family:"Ti=
mes New Roman"'>L</span></sub>
at the input and output terminals of the device respectively.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>To complete the circuit, bias netw=
orks
are designed to feed the supply voltages to the device.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;page-break-a=
fter:avoid'><!--[if gte vml 1]><v:shape
 id=3D"_x0000_i1026" type=3D"#_x0000_t75" style=3D'width:320.25pt;height:12=
9pt'
 o:ole=3D"">
 <v:imagedata src=3D"LNADesignHFE2_07_files/image005.emz" o:title=3D""/>
</v:shape><![endif]--><![if !vml]><img border=3D0 width=3D427 height=3D172
src=3D"LNADesignHFE2_07_files/image006.gif" v:shapes=3D"_x0000_i1026"><![en=
dif]><!--[if gte mso 9]><xml>
 <o:OLEObject Type=3D"Embed" ProgID=3D"Visio.Drawing.11" ShapeID=3D"_x0000_=
i1026"
  DrawAspect=3D"Content" ObjectID=3D"_1233633273">
 </o:OLEObject>
</xml><![endif]--></p>

<p class=3DMsoCaption align=3Dcenter style=3D'text-align:center'>Figure <!-=
-[if supportFields]><span
style=3D'mso-element:field-begin'></span><span
style=3D'mso-spacerun:yes'>&nbsp;</span>SEQ Figure \* ARABIC <span
style=3D'mso-element:field-separator'></span><![endif]--><span style=3D'mso=
-no-proof:
yes'>2</span><!--[if supportFields]><span style=3D'mso-element:field-end'><=
/span><![endif]-->,
Select the Input Impedance and Determine the Output Impedance</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal><b style=3D'mso-bidi-font-weight:normal'>Disadvantage =
of
Designing for Minimum Noise Figure</b></p>

<p class=3DMsoNormal>As can be seen by equation 4, there is only one load
impedance, Z<sub><span style=3D'font-family:Times;mso-bidi-font-family:"Tim=
es New Roman"'>L</span></sub>,
that will provide a conjugate output match for a device terminated at the i=
nput
for minimum noise. With the output terminated with a (conjugate) matched Z<=
sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>L</span>=
</sub>,
the input impedance Zin can be calculated according to equations 6 and 7 be=
low.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>Equation 6)<span style=3D'mso-spacerun:yes'>&nbsp;
</span>&#915;in =3D S11 + S12 S21 &#915;<sub><span style=3D'font-family:Tim=
es;
mso-bidi-font-family:"Times New Roman"'>L</span></sub>/(1 &#8211; S22 &#915=
;<sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>L</span>=
</sub>)
</p>

<p class=3DMsoNormal>Equation 7)<span style=3D'mso-spacerun:yes'>&nbsp; </s=
pan>Zin
=3D Z0 (1 + &#915;in)/(1 &#8211; &#915;in)</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>However, Zin generally is not equal to Zopt* and so a
mismatch occurs at the input port.<span style=3D'mso-spacerun:yes'>&nbsp;
</span>Therefore, the disadvantage of designing an LNA for minimum noise fi=
gure
(and maximum associated gain) is that the input will usually be mismatched.=
</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>The amount of mismatch, M, and reflection coefficient,=
 &#915;,
can be calculated from equations 8 and 9 respectively [4]:</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>Equation 8) M =3D (1 - | &#915;in|^2)(1 - | &#915;<sub=
><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>S</span>=
</sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>|^2)/|1 =
- </span>&#915;in
&#915;<sub><span style=3D'font-family:Times;mso-bidi-font-family:"Times New=
 Roman"'>S</span></sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>|^2<o:p>=
</o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'>Equation
9) </span>&#915;<span style=3D'font-family:Times;mso-bidi-font-family:"Time=
s New Roman"'>
=3D Sqr(1 - m)<o:p></o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'><o:p>&nbsp;</o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'>The
mismatch expressed in terms of return loss is:<o:p></o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'><o:p>&nbsp;</o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'>Equation
10) RL =3D 20 Log(|</span>&#915;|)</p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'><o:p>&nbsp;</o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'>For
minimum noise, </span>&#915;<sub><span style=3D'font-family:Times;mso-bidi-=
font-family:
"Times New Roman"'>S</span></sub><span style=3D'font-family:Times;mso-bidi-=
font-family:
"Times New Roman"'> =3D </span>&#915;<span style=3D'font-family:Times;mso-b=
idi-font-family:
"Times New Roman"'>opt and the return loss for this mismatch is:<o:p></o:p>=
</span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'><o:p>&nbsp;</o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'>Equation
11) RL =3D 10 Log(|1 - (1 - | &#915;in|^2)(1 - | &#915;opt|^2)/|1 - &#915;in
&#915;opt|^2|)<o:p></o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'><o:p>&nbsp;</o:p></span></p>

<p class=3DMsoNormal><b style=3D'mso-bidi-font-weight:normal'><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>Input Mi=
smatch
in the Unilateral Low Noise Amplifier</span></b><span style=3D'font-family:=
Times;
mso-bidi-font-family:"Times New Roman"'><o:p></o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'>For
the simplified unilateral device model shown in Figure 3A, Zin =3D R<sub>i<=
/sub>
&#8211; J X<sub>Ci</sub>.<span style=3D'mso-spacerun:yes'>&nbsp; </span>The
required input match for gain and best return loss would be Z<sub>S</sub> =
=3D
Zin* =3D R<sub>i</sub> + J X<sub>Ci</sub>.<span style=3D'mso-spacerun:yes'>=
&nbsp;
</span>As stated previously, the required match for minimum noise is Z<sub>=
S</sub>
=3D Zopt.<span style=3D'mso-spacerun:yes'>&nbsp; </span>Since there is no c=
ontrol
over Zopt or Zin for the unilateral device, there is no way to achieve the
noise and gain/RL match simultaneously.<span style=3D'mso-spacerun:yes'>&nb=
sp;
</span>The resulting mismatch occurs with RL according to equation 11.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>Without feedback the unilateral de=
vice
will not allow for improving the input match without compromising the noise
figure.<span style=3D'mso-spacerun:yes'>&nbsp; </span>Therefore, the method
described next will not work for a unilateral device where S12 =3D 0.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>However, for most transistors S12
&#8800; 0 and the following method applies.<o:p></o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'><o:p>&nbsp;</o:p></span></p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;page-break-a=
fter:avoid'><!--[if gte vml 1]><v:shape
 id=3D"_x0000_i1027" type=3D"#_x0000_t75" style=3D'width:6in;height:284.25p=
t' o:ole=3D"">
 <v:imagedata src=3D"LNADesignHFE2_07_files/image007.emz" o:title=3D""/>
</v:shape><![endif]--><![if !vml]><img border=3D0 width=3D576 height=3D379
src=3D"LNADesignHFE2_07_files/image008.gif" v:shapes=3D"_x0000_i1027"><![en=
dif]><!--[if gte mso 9]><xml>
 <o:OLEObject Type=3D"Embed" ProgID=3D"Visio.Drawing.11" ShapeID=3D"_x0000_=
i1027"
  DrawAspect=3D"Content" ObjectID=3D"_1233633274">
 </o:OLEObject>
</xml><![endif]--></p>

<p class=3DMsoCaption align=3Dcenter style=3D'text-align:center'>Figure <!-=
-[if supportFields]><span
style=3D'mso-element:field-begin'></span><span
style=3D'mso-spacerun:yes'>&nbsp;</span>SEQ Figure \* ARABIC <span
style=3D'mso-element:field-separator'></span><![endif]--><span style=3D'mso=
-no-proof:
yes'>3</span><!--[if supportFields]><span style=3D'mso-element:field-end'><=
/span><![endif]-->,
Simple Device Model</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal><b style=3D'mso-bidi-font-weight:normal'>Trading Outpu=
t Match
for Improved Input Match</b></p>

<p class=3DMsoNormal>Consider the addition of Cdg (or other feedback mechan=
ism)
in the bilateral device model of Figure 3B.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>This feedback allows changes at the
device output to be coupled to the input, thus changing the value of Zin.<s=
pan
style=3D'mso-spacerun:yes'>&nbsp; </span>If we can change Zin to make it cl=
oser
to Zopt* then we have improved the input return loss (while maintaining the
minimum noise figure).<span style=3D'mso-spacerun:yes'>&nbsp; </span></p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>The exact dependence of Zin (&#915;in) on Z<sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>L</span>=
</sub>
(&#915;<sub><span style=3D'font-family:Times;mso-bidi-font-family:"Times Ne=
w Roman"'>L</span></sub>)
was given in equations 6 and 7.<span style=3D'mso-spacerun:yes'>&nbsp;
</span>From this relation and the picture of the bilateral device model in
Figure 3B, it is clear that some change in Z<sub><span style=3D'font-family=
:Times;
mso-bidi-font-family:"Times New Roman"'>L</span></sub><span style=3D'font-f=
amily:
Times;mso-bidi-font-family:"Times New Roman"'> (the load match) will result=
 in
Zin moving closer to Zopt*.<span style=3D'mso-spacerun:yes'>&nbsp; </span>T=
he
main question now is what values of load impedance (Z<sub>L</sub>) will res=
ult
in improved values of Zin.<o:p></o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'><o:p>&nbsp;</o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'>One
value of </span>&#915;<sub><span style=3D'font-family:Times;mso-bidi-font-f=
amily:
"Times New Roman"'>L</span></sub><span style=3D'font-family:Times;mso-bidi-=
font-family:
"Times New Roman"'> (if it exists) is certain to make Zin =3D Zopt*.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>It can be found by solving equatio=
n 6
for </span>&#915;<sub><span style=3D'font-family:Times;mso-bidi-font-family=
:"Times New Roman"'>L</span></sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'> in term=
s of </span>&#915;in
and the device S-parameters as shown in equation 12:</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>Equation 12) &#915;<sub><span style=3D'font-family:Tim=
es;
mso-bidi-font-family:"Times New Roman"'>L</span></sub> =3D (&#915;in - S11)=
/(S12
S21 &#8211; S11 S22 + S22 &#915;in)</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>Substituting &#915;<span style=3D'font-family:Times;
mso-bidi-font-family:"Times New Roman"'>opt* for </span>&#915;in in equatio=
n 12
produces the correct load (&#915;<sub><span style=3D'font-family:Times;
mso-bidi-font-family:"Times New Roman"'>L</span></sub><span style=3D'font-f=
amily:
Times;mso-bidi-font-family:"Times New Roman"'>) for a perfect input RL match
and noise match.<span style=3D'mso-spacerun:yes'>&nbsp; </span>There are a =
couple
of problems with this approach.<span style=3D'mso-spacerun:yes'>&nbsp; </sp=
an>It
can produce a very poor output match, often with a RL of only a few dB or e=
ven
worse.<span style=3D'mso-spacerun:yes'>&nbsp; </span>Another potential prob=
lem is
that the required load may not exist within the Smith Chart boundary and
therefore will not be realizable.<o:p></o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'><o:p>&nbsp;</o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'>What
is desired is a method that implements a compromise between perfect output
return loss and poor input return loss and vice versa.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>Referring to Figure 4, the graphic=
al
solution is a follows:<o:p></o:p></span></p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;page-break-a=
fter:avoid'><!--[if gte vml 1]><v:shape
 id=3D"_x0000_i1028" type=3D"#_x0000_t75" style=3D'width:376.5pt;height:229=
.5pt'>
 <v:imagedata src=3D"LNADesignHFE2_07_files/image009.png" o:title=3D""/>
</v:shape><![endif]--><![if !vml]><img border=3D0 width=3D502 height=3D306
src=3D"LNADesignHFE2_07_files/image010.jpg" v:shapes=3D"_x0000_i1028"><![en=
dif]></p>

<p class=3DMsoCaption align=3Dcenter style=3D'text-align:center'>Figure <!-=
-[if supportFields]><span
style=3D'mso-element:field-begin'></span><span
style=3D'mso-spacerun:yes'>&nbsp;</span>SEQ Figure \* ARABIC <span
style=3D'mso-element:field-separator'></span><![endif]--><span style=3D'mso=
-no-proof:
yes'>4</span><!--[if supportFields]><span style=3D'mso-element:field-end'><=
/span><![endif]-->,
Circle and Impedance Mapping on the Smith Chart</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal style=3D'margin-left:.25in;text-indent:-.25in;mso-list=
:l5 level1 lfo7;
tab-stops:list .25in'><![if !supportLists]><span style=3D'mso-list:Ignore'>=
1.<span
style=3D'font:7.0pt "Times New Roman"'>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; </spa=
n></span><![endif]>Plot
&#915;<span style=3D'font-family:Times;mso-bidi-font-family:"Times New Roma=
n"'>opt
on the input plane (Smith Chart representing impedances at the device input=
).</span></p>

<p class=3DMsoNormal style=3D'margin-left:.25in;text-indent:-.25in;mso-list=
:l5 level1 lfo7;
tab-stops:list .25in'><![if !supportLists]><span style=3D'mso-list:Ignore'>=
2.<span
style=3D'font:7.0pt "Times New Roman"'>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; </spa=
n></span><![endif]>Map
&#915;<span style=3D'font-family:Times;mso-bidi-font-family:"Times New Roma=
n"'>opt
from the input plane to what would be a conjugate match (</span><span
style=3D'font-family:Times'>&#915;</span><sub><span style=3D'font-family:Ti=
mes;
mso-bidi-font-family:"Times New Roman"'>ML</span></sub><span style=3D'font-=
family:
Times;mso-bidi-font-family:"Times New Roman"'>) on the output plane using
equation 4.</span></p>

<p class=3DMsoNormal style=3D'margin-left:.25in;text-indent:-.25in;mso-list=
:l5 level1 lfo7;
tab-stops:list .25in'><![if !supportLists]><span style=3D'mso-list:Ignore'>=
3.<span
style=3D'font:7.0pt "Times New Roman"'>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; </spa=
n></span><![endif]>Plot
a mismatch circle (C2 in Figure 4) relative to <span style=3D'font-family:T=
imes'>&#915;</span><sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>ML</span=
></sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'> in the =
output
plane.<span style=3D'mso-spacerun:yes'>&nbsp; </span>Any size circle can be=
 used
initially, but a circle representing a 1.5 VSWR makes a good starting point=
.</span></p>

<p class=3DMsoNormal style=3D'margin-left:.25in;text-indent:-.25in;mso-list=
:l5 level1 lfo7;
tab-stops:list .25in'><![if !supportLists]><span style=3D'mso-list:Ignore'>=
4.<span
style=3D'font:7.0pt "Times New Roman"'>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; </spa=
n></span><![endif]>Map
the output mismatch circle to the corresponding &#915;<span style=3D'font-f=
amily:
Times;mso-bidi-font-family:"Times New Roman"'>in* circle (C3 in Figure 4) u=
sing
the conjugate of equation 6.</span></p>

<p class=3DMsoNormal style=3D'margin-left:.25in;text-indent:-.25in;mso-list=
:l5 level1 lfo7;
tab-stops:list .25in'><![if !supportLists]><span style=3D'mso-list:Ignore'>=
5.<span
style=3D'font:7.0pt "Times New Roman"'>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; </spa=
n></span><![endif]><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>Find a p=
oint
on C2 that maps to a point on C3 that is closest to </span>&#915;<sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>S</span>=
</sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'> =3D </s=
pan>&#915;<span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>opt.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>Denote the point on C3 as </span>&=
#915;<span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>in*.</sp=
an></p>

<p class=3DMsoNormal style=3D'margin-left:.25in;text-indent:-.25in;mso-list=
:l5 level1 lfo7;
tab-stops:list .25in'><![if !supportLists]><span style=3D'mso-list:Ignore'>=
6.<span
style=3D'font:7.0pt "Times New Roman"'>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; </spa=
n></span><![endif]><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>Construc=
t a
mismatch circle (C1 in Figure 4) relative to </span>&#915;<span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>in* (fou=
nd in
step 5) that intercepts the point </span>&#915;<sub><span style=3D'font-fam=
ily:
Times;mso-bidi-font-family:"Times New Roman"'>S</span></sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'> =3D </s=
pan>&#915;<span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>opt in t=
he
input plane.</span></p>

<p class=3DMsoNormal style=3D'margin-left:.25in;text-indent:-.25in;mso-list=
:l5 level1 lfo7;
tab-stops:list .25in'><![if !supportLists]><span style=3D'mso-list:Ignore'>=
7.<span
style=3D'font:7.0pt "Times New Roman"'>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; </spa=
n></span><![endif]><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>Compute =
the
equivalent input return loss represented by circle C1 according to equation=
s 8,
9, and 10.<span style=3D'mso-spacerun:yes'>&nbsp; </span>Compute the equiva=
lent
output return loss represented by circle C2 in the output plane using simil=
ar
expressions (in terms of </span><span style=3D'font-family:Times'>&#915;</s=
pan><sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>ML</span=
></sub><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'> and </s=
pan><span
style=3D'font-family:Times'>&#915;</span><sub><span style=3D'font-family:Ti=
mes;
mso-bidi-font-family:"Times New Roman"'>L</span></sub><span style=3D'font-f=
amily:
Times;mso-bidi-font-family:"Times New Roman"'>).</span></p>

<p class=3DMsoNormal style=3D'margin-left:.25in;text-indent:-.25in;mso-list=
:l5 level1 lfo7;
tab-stops:list .25in'><![if !supportLists]><span style=3D'font-family:Times;
mso-fareast-font-family:Times'><span style=3D'mso-list:Ignore'>8.<span
style=3D'font:7.0pt "Times New Roman"'>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; </spa=
n></span></span><![endif]><span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>Determin=
e if
the input and output return loss (step 7) meets requirements.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>If not, repeat steps 3 through 8 u=
sing a
different output mismatch circle C2.<span style=3D'mso-spacerun:yes'>&nbsp;
</span>If the return loss at both ports is acceptable then go on to design =
the
matching networks to yield </span>&#915;<sub><span style=3D'font-family:Tim=
es;
mso-bidi-font-family:"Times New Roman"'>S</span></sub><span style=3D'font-f=
amily:
Times;mso-bidi-font-family:"Times New Roman"'> =3D </span>&#915;<span
style=3D'font-family:Times;mso-bidi-font-family:"Times New Roman"'>opt at t=
he
input and </span>&#915;<sub><span style=3D'font-family:Times;mso-bidi-font-=
family:
"Times New Roman"'>L</span></sub><span style=3D'font-family:Times;mso-bidi-=
font-family:
"Times New Roman"'> at the output. <o:p></o:p></span></p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'>After
designing the matching networks and bias feeds, the LNA design is
complete.<span style=3D'mso-spacerun:yes'>&nbsp; </span>A simulation can be=
 run
on the complete LNA circuit to verify performance.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>All of the above steps (1 through =
8) are
automated in the LINC2 LNA Circles Utility.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>Selecting <b style=3D'mso-bidi-fon=
t-weight:
normal'>Minimum Noise | Fmin, Gain and RL</b> from the view menu performs a=
ll
these steps in less than one second.<span style=3D'mso-spacerun:yes'>&nbsp;
</span>A slider control makes the process interactive and intuitive.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>Moving the slider control from Max
Output RL toward Max Input RL makes the tradeoff between output and input
return loss automatic.<span style=3D'mso-spacerun:yes'>&nbsp; </span>The new
match points, all circles, gain, return loss and noise figure are instantly
updated when the slider control is moved.<span style=3D'mso-spacerun:yes'>&=
nbsp;
</span><o:p></o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'><o:p>&nbsp;</o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'>The
LINC2 Circles Utility allows for inputting an exact numerical value for the
output return loss instead of using the slider control.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>Simply press the Enter key, input =
the
desired output return loss, and click OK.<span style=3D'mso-spacerun:yes'>&=
nbsp;
</span>Once again, the new match points, all circles, gain, return loss and
noise figure are instantly updated.<span style=3D'mso-spacerun:yes'>&nbsp;
</span>When the desired tradoffs have been made, selecting the Match menu
automatically designs the matching networks and synthesizes the complete LNA
circuit schematic.<o:p></o:p></span></p>

<p class=3DMsoNormal><span style=3D'font-family:Times;mso-bidi-font-family:=
"Times New Roman"'><o:p>&nbsp;</o:p></span></p>

<p class=3DMsoNormal><b style=3D'mso-bidi-font-weight:normal'>Balancing LNA
Performance Between Noise Figure, Input Match and Output Match - a <st1:Str=
eet
w:st=3D"on"><st1:address w:st=3D"on">Three-Way</st1:address></st1:Street> T=
radeoff.</b></p>

<p class=3DMsoNormal>In the last section, a procedure was outlined for trad=
ing
output RL for improved input RL while maintaining the NF at Fmin (minimum n=
oise
figure).<span style=3D'mso-spacerun:yes'>&nbsp; </span>That procedure is sl=
ightly
restrictive since the input match impedance (Z<sub>S</sub>) is not allowed =
to
deviate from Zopt.<span style=3D'mso-spacerun:yes'>&nbsp; </span>If the two=
-way
tradeoff of the previous section is expanded to a three-way tradeoff betwee=
n NF
and RL at both ports, the added flexibility in allowing Z<sub>S</sub> to va=
ry
away from Zopt increases the capability of meeting more demanding RL goals =
at
both ports.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>It is often the case that giving up just a little in n=
oise
figure can go a long way toward boosting the input return loss without havi=
ng
to sacrifice too much output return loss.<span style=3D'mso-spacerun:yes'>&=
nbsp;
</span>This is especially true when the noise resistance of the device is
small.<span style=3D'mso-spacerun:yes'>&nbsp; </span>This is evident by not=
ing in
equation 3 that the normalized noise resistance (rn) is a direct factor in =
how
the magnitude of the difference in &#915;<sub>S</sub> and &#915;opt adds to
Fmin.<span style=3D'mso-spacerun:yes'>&nbsp; </span>When rn is small, a sma=
ll
departure from Fmin results in a relatively large noise circle.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>For a given NF, this allows &#915;=
<sub>S</sub>
(on the given NF circle) to reach closer to the point of best input return
loss.<span style=3D'mso-spacerun:yes'>&nbsp; </span>In any case, giving up =
some
NF improves the output to input RL tradeoff regardless of the value of rn.<=
/p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal><b style=3D'mso-bidi-font-weight:normal'>LNA Design Ex=
ample</b></p>

<p class=3DMsoNormal>In addition to implementing the two-way tradeoff betwe=
en
input and output RL, the LINC2 program also automates the three-way tradeoff
between NF, input RL and output RL.<span style=3D'mso-spacerun:yes'>&nbsp;
</span>The procedure is similar to the 8-step procedure outlined above, exc=
ept
that a noise circle representing a noise figure larger than Fmin will be
added.<span style=3D'mso-spacerun:yes'>&nbsp; </span>In this case, &#915;<s=
ub>S</sub>
will then be located on the noise circle at a point closest to the maximum
input RL point, instead of &#915;opt.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>The proposed LNA design example will have the following
design goals:</p>

<p class=3DMsoNormal>LNA Device:<span style=3D'mso-spacerun:yes'>&nbsp;
</span>Agilent ATF-54143 FET PHEMT.</p>

<p class=3DMsoNormal>DC Operating Point:<span style=3D'mso-spacerun:yes'>&n=
bsp;
</span>Vds=3D2V, Id=3D20mA.</p>

<p class=3DMsoNormal>GPS Frequency Band:<span style=3D'mso-spacerun:yes'>&n=
bsp;
</span>1574.42 to 1576.42 MHz.</p>

<p class=3DMsoNormal>Power Gain:<span style=3D'mso-spacerun:yes'>&nbsp; </s=
pan>&gt;
16 dB.</p>

<p class=3DMsoNormal>Noise Figure:<span style=3D'mso-spacerun:yes'>&nbsp;
</span>&lt; 1.0 dB</p>

<p class=3DMsoNormal>Input RL:<span style=3D'mso-spacerun:yes'>&nbsp; </spa=
n>&gt;
13.98 dB (1.5 VSWR)</p>

<p class=3DMsoNormal>Output RL: &gt; 9.54 dB (2.0 VSWR)</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>The design procedure will be implemented at 1.575 GHz
(center of the GPS RX band).</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>The design starts by selecting <b style=3D'mso-bidi-fo=
nt-weight:
normal'>Amplifier Design | Low Noise Amplifier</b> from the LINC2 Tools
menu.<span style=3D'mso-spacerun:yes'>&nbsp; </span>At the prompt the S-par=
ameter
file name for the ATF-54143 FET device is entered and the LINC2 Circles Uti=
lity
opens with the device data loaded (Figure 5).<span
style=3D'mso-spacerun:yes'>&nbsp; </span>The next step is to enter the freq=
uency
range (1574 &#8211; 1576 MHz) and select 1575 MHz from the <b>Frequency</b>
menu as the design center frequency.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal><b>View | Stability</b> displays stability circles for=
 the
selected frequencies, indicating that the design could benefit from increas=
ed
stability.<span style=3D'mso-spacerun:yes'>&nbsp; </span>The LINC2 LNA desi=
gn
utility offers several methods for automatically stabilizing a device.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>When a stabilization method is sel=
ected
from the <b>Options | Stabilize Device</b> menu, clicking <b>Optimize</b> w=
ill
generate just enough resistive loading or inductive feedback to stabilize t=
he
device.<span style=3D'mso-spacerun:yes'>&nbsp; </span>For this example, 0.3=
5 nH
of common lead inductance was used for improved stability via series
feedback.<span style=3D'mso-spacerun:yes'>&nbsp; </span>The 0.35 nH inducto=
r is
placed between the source (common) lead and ground as shown in Figure 5.<sp=
an
style=3D'mso-spacerun:yes'>&nbsp; </span>In this example the inductance val=
ue was
selected manually (instead of using <b>Optimize</b>) in order to control the
amount of feedback short of complete unconditional stability.</p>

<p class=3DMsoHeader style=3D'tab-stops:.5in'><o:p>&nbsp;</o:p></p>

<p class=3DMsoHeader style=3D'tab-stops:.5in'>Selecting <b>View | Noise, Ga=
in and
RL</b> from the top menu bar opens the Single Frequency Analysis (Circles)
window for automated three-way tradeoff analysis between noise figure, gain=
 and
return loss (Figure 6).<span style=3D'mso-spacerun:yes'>&nbsp; </span>The p=
rinted
data at the bottom of the window in Figure 5 indicates that the minimum noi=
se figure
at this frequency is 0.36 dB with a maximum associated gain of 16.6 dB.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>With the output matched (output RL=
 =3D 50
dB), the input RL is reported as only 6.7 dB.</p>

<p class=3DMsoHeader style=3D'tab-stops:.5in'><o:p>&nbsp;</o:p></p>

<p class=3DMsoHeader style=3D'tab-stops:.5in'>At this point only two things=
 need to
be done to meet the original LNA design goals.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>First, we trade off a very slight =
amount
of noise figure for improved matching conditions.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>This is done by entering 0.4 dB in=
 the
Noise (dB) input box in the upper right corner of the Input Plane display
(Figure 6).<span style=3D'mso-spacerun:yes'>&nbsp; </span>Then, the RL slid=
er
control is moved from Max Output RL toward Max Input RL until the input RL =
spec
of 14 dB is exceeded.<span style=3D'mso-spacerun:yes'>&nbsp; </span>As the =
RL
slider control is moved, the output mismatch circle grows while the input
mismatch circle decreases in size.<span style=3D'mso-spacerun:yes'>&nbsp;
</span>A check of the output RL indicates that it also exceeds the 9.54 dB =
spec
by nearly 2 dB.</p>

<p class=3DMsoHeader style=3D'tab-stops:.5in'><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;page-break-a=
fter:avoid'><!--[if gte vml 1]><v:shape
 id=3D"_x0000_i1029" type=3D"#_x0000_t75" style=3D'width:6in;height:291pt'>
 <v:imagedata src=3D"LNADesignHFE2_07_files/image011.png" o:title=3D"LNACir=
1c"/>
</v:shape><![endif]--><![if !vml]><img border=3D0 width=3D576 height=3D388
src=3D"LNADesignHFE2_07_files/image012.jpg" v:shapes=3D"_x0000_i1029"><![en=
dif]></p>

<p class=3DMsoCaption align=3Dcenter style=3D'text-align:center'>Figure <!-=
-[if supportFields]><span
style=3D'mso-element:field-begin'></span><span
style=3D'mso-spacerun:yes'>&nbsp;</span>SEQ Figure \* ARABIC <span
style=3D'mso-element:field-separator'></span><![endif]--><span style=3D'mso=
-no-proof:
yes'>5</span><!--[if supportFields]><span style=3D'mso-element:field-end'><=
/span><![endif]-->,
The LINC2 LNA Circles Utility</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;page-break-a=
fter:avoid'><!--[if gte vml 1]><v:shape
 id=3D"_x0000_i1030" type=3D"#_x0000_t75" style=3D'width:6in;height:290.25p=
t'>
 <v:imagedata src=3D"LNADesignHFE2_07_files/image013.png" o:title=3D"LNACir=
2a"/>
</v:shape><![endif]--><![if !vml]><img border=3D0 width=3D576 height=3D387
src=3D"LNADesignHFE2_07_files/image014.jpg" v:shapes=3D"_x0000_i1030"><![en=
dif]></p>

<p class=3DMsoCaption align=3Dcenter style=3D'text-align:center'>Figure <!-=
-[if supportFields]><span
style=3D'mso-element:field-begin'></span><span
style=3D'mso-spacerun:yes'>&nbsp;</span>SEQ Figure \* ARABIC <span
style=3D'mso-element:field-separator'></span><![endif]--><span style=3D'mso=
-no-proof:
yes'>6</span><!--[if supportFields]><span style=3D'mso-element:field-end'><=
/span><![endif]-->,
Gain, Noise Figure and Return Loss Tradeoffs Using the Circles Utility</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>As the Noise, Gain and RL analysis of Figure 6 indicat=
es,
all specifications have now been met or exceeded as shown in Table 1:</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoCaption align=3Dcenter style=3D'text-align:center;page-break-=
after:
avoid'>Table <!--[if supportFields]><span style=3D'mso-element:field-begin'=
></span><span
style=3D'mso-spacerun:yes'>&nbsp;</span>SEQ Table \* ARABIC <span
style=3D'mso-element:field-separator'></span><![endif]--><span style=3D'mso=
-no-proof:
yes'>1</span><!--[if supportFields]><span style=3D'mso-element:field-end'><=
/span><![endif]--></p>

<div align=3Dcenter>

<table class=3DMsoNormalTable border=3D1 cellspacing=3D0 cellpadding=3D0
 style=3D'border-collapse:collapse;border:none;mso-border-alt:solid windowt=
ext .5pt;
 mso-padding-alt:0in 5.4pt 0in 5.4pt;mso-border-insideh:.5pt solid windowte=
xt;
 mso-border-insidev:.5pt solid windowtext'>
 <tr style=3D'mso-yfti-irow:0;mso-yfti-firstrow:yes'>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border:solid windowtex=
t 1.0pt;
  mso-border-alt:solid windowtext .5pt;padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>Specification</p>
  </td>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border:solid windowtex=
t 1.0pt;
  border-left:none;mso-border-left-alt:solid windowtext .5pt;mso-border-alt:
  solid windowtext .5pt;padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>Goal</p>
  </td>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border:solid windowtex=
t 1.0pt;
  border-left:none;mso-border-left-alt:solid windowtext .5pt;mso-border-alt:
  solid windowtext .5pt;padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>Design</p>
  </td>
 </tr>
 <tr style=3D'mso-yfti-irow:1'>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border:solid windowtex=
t 1.0pt;
  border-top:none;mso-border-top-alt:solid windowtext .5pt;mso-border-alt:s=
olid windowtext .5pt;
  padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>Frequency</p>
  </td>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border-top:none;border=
-left:
  none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1=
.0pt;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid window=
text .5pt;
  mso-border-alt:solid windowtext .5pt;padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>1575 MHz</p>
  </td>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border-top:none;border=
-left:
  none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1=
.0pt;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid window=
text .5pt;
  mso-border-alt:solid windowtext .5pt;padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>1575 MHz</p>
  </td>
 </tr>
 <tr style=3D'mso-yfti-irow:2'>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border:solid windowtex=
t 1.0pt;
  border-top:none;mso-border-top-alt:solid windowtext .5pt;mso-border-alt:s=
olid windowtext .5pt;
  padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>Power Gain</p>
  </td>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border-top:none;border=
-left:
  none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1=
.0pt;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid window=
text .5pt;
  mso-border-alt:solid windowtext .5pt;padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>&gt; 16 dB</p>
  </td>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border-top:none;border=
-left:
  none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1=
.0pt;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid window=
text .5pt;
  mso-border-alt:solid windowtext .5pt;padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoHeader style=3D'tab-stops:.5in'>17.12 dB</p>
  </td>
 </tr>
 <tr style=3D'mso-yfti-irow:3'>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border:solid windowtex=
t 1.0pt;
  border-top:none;mso-border-top-alt:solid windowtext .5pt;mso-border-alt:s=
olid windowtext .5pt;
  padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>Noise Figure</p>
  </td>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border-top:none;border=
-left:
  none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1=
.0pt;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid window=
text .5pt;
  mso-border-alt:solid windowtext .5pt;padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>&lt; 1.0 dB</p>
  </td>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border-top:none;border=
-left:
  none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1=
.0pt;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid window=
text .5pt;
  mso-border-alt:solid windowtext .5pt;padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>0.4 dB</p>
  </td>
 </tr>
 <tr style=3D'mso-yfti-irow:4'>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border:solid windowtex=
t 1.0pt;
  border-top:none;mso-border-top-alt:solid windowtext .5pt;mso-border-alt:s=
olid windowtext .5pt;
  padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>Input RL</p>
  </td>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border-top:none;border=
-left:
  none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1=
.0pt;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid window=
text .5pt;
  mso-border-alt:solid windowtext .5pt;padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>&gt;13.98 dB</p>
  </td>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border-top:none;border=
-left:
  none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1=
.0pt;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid window=
text .5pt;
  mso-border-alt:solid windowtext .5pt;padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>14.4 dB</p>
  </td>
 </tr>
 <tr style=3D'mso-yfti-irow:5;mso-yfti-lastrow:yes'>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border:solid windowtex=
t 1.0pt;
  border-top:none;mso-border-top-alt:solid windowtext .5pt;mso-border-alt:s=
olid windowtext .5pt;
  padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>Output RL</p>
  </td>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border-top:none;border=
-left:
  none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1=
.0pt;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid window=
text .5pt;
  mso-border-alt:solid windowtext .5pt;padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>&gt; 9.54 dB</p>
  </td>
  <td width=3D197 valign=3Dtop style=3D'width:2.05in;border-top:none;border=
-left:
  none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1=
.0pt;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid window=
text .5pt;
  mso-border-alt:solid windowtext .5pt;padding:0in 5.4pt 0in 5.4pt'>
  <p class=3DMsoNormal>11.4 dB</p>
  </td>
 </tr>
</table>

</div>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>The LINC2 program graphically and numerically displays=
 the
source and load impedances required to realize the design goals listed in T=
able
1.<span style=3D'mso-spacerun:yes'>&nbsp; </span>Z<sub>S</sub> is plotted a=
s a
point at the intersection of the 0.4 dB NF circle and 14.4 dB RL circle.<sp=
an
style=3D'mso-spacerun:yes'>&nbsp; </span>The exact source impedance is prin=
ted at
the bottom of the window as ZSource =3D 25.45 + J 25.82 ohms.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>Z<sub>L</sub> is plotted as a poin=
t on
the 11.4 dB output RL circle.<span style=3D'mso-spacerun:yes'>&nbsp; </span=
>The
exact load impedance is printed at the bottom of the window as ZLoad =3D 34=
.82 +
J 22.42 ohms.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>The displayed Z<sub>S</sub> and Z<sub>L</sub> data is
required information for designing the input and output matching networks.<=
span
style=3D'mso-spacerun:yes'>&nbsp; </span>However, LINC2 automatically takes=
 this
data and synthesizes the complete LNA schematic including the matching netw=
orks
and device stabilization components.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<h1>LINC2 LNA Synthesis</h1>

<p class=3DMsoNormal>The LINC2 LNA design module offers many approaches to =
low
noise amplifier design and synthesis.<span style=3D'mso-spacerun:yes'>&nbsp;
</span>The following design methods are automated in the LINC2 LNA design t=
ool:</p>

<p class=3DMsoNormal>*Minimum noise.</p>

<p class=3DMsoNormal>*Maximum gain.</p>

<p class=3DMsoNormal>*Noise and gain tradeoffs (match varies between Fmin a=
nd
Gmax points).</p>

<p class=3DMsoNormal>*Minimum noise with improved input RL (trading off out=
put
RL).</p>

<p class=3DMsoNormal>*Low noise with improved input RL (trading off NF and =
output
RL).</p>

<p class=3DMsoNormal>*Available power gain design.</p>

<p class=3DMsoNormal>*Operating power gain or transducer power gain design.=
</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>As is the case for each of these design methods, the
three-way design tradeoff presented above is completed by simply selecting =
the
desired matching network topology from the Match menu.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>An LNA schematic is immediately
synthesized that captures the design&#8217;s performance.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>When a lumped L network with a ser=
ies C
and parallel L topology is selected from the Match menu, the LNA schematic =
in
Figure 7 is generated.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>Clicking <b>Analyze</b> in the schematic window runs a
circuit simulation producing the results shown in Figures 8 and 9.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>The simulation results for the des=
ign
frequency of 1575 MHz were exactly as predicted with gain =3D 17.12 dB, inp=
ut RL
=3D 14.4 dB and output RL =3D 11.4 dB.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;page-break-a=
fter:avoid'><!--[if gte vml 1]><v:shape
 id=3D"_x0000_i1031" type=3D"#_x0000_t75" style=3D'width:459.75pt;height:19=
0.5pt'>
 <v:imagedata src=3D"LNADesignHFE2_07_files/image015.png" o:title=3D"Sch1C"=
/>
</v:shape><![endif]--><![if !vml]><img border=3D0 width=3D613 height=3D254
src=3D"LNADesignHFE2_07_files/image016.jpg" v:shapes=3D"_x0000_i1031"><![en=
dif]></p>

<p class=3DMsoCaption align=3Dcenter style=3D'text-align:center'>Figure <!-=
-[if supportFields]><span
style=3D'mso-element:field-begin'></span><span
style=3D'mso-spacerun:yes'>&nbsp;</span>SEQ Figure \* ARABIC <span
style=3D'mso-element:field-separator'></span><![endif]--><span style=3D'mso=
-no-proof:
yes'>7</span><!--[if supportFields]><span style=3D'mso-element:field-end'><=
/span><![endif]-->,
LINC2 Synthesized LNA schematic</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;page-break-a=
fter:avoid'><!--[if gte vml 1]><v:shape
 id=3D"_x0000_i1032" type=3D"#_x0000_t75" style=3D'width:468pt;height:339pt=
'>
 <v:imagedata src=3D"LNADesignHFE2_07_files/image017.png" o:title=3D"gph1C"=
/>
</v:shape><![endif]--><![if !vml]><img border=3D0 width=3D624 height=3D452
src=3D"LNADesignHFE2_07_files/image018.jpg" v:shapes=3D"_x0000_i1032"><![en=
dif]></p>

<p class=3DMsoCaption align=3Dcenter style=3D'text-align:center'>Figure <!-=
-[if supportFields]><span
style=3D'mso-element:field-begin'></span><span
style=3D'mso-spacerun:yes'>&nbsp;</span>SEQ Figure \* ARABIC <span
style=3D'mso-element:field-separator'></span><![endif]--><span style=3D'mso=
-no-proof:
yes'>8</span><!--[if supportFields]><span style=3D'mso-element:field-end'><=
/span><![endif]-->,
Gain (S21) and Return Loss Simulation Results</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;page-break-a=
fter:avoid'><!--[if gte vml 1]><v:shape
 id=3D"_x0000_i1033" type=3D"#_x0000_t75" style=3D'width:439.5pt;height:353=
.25pt'>
 <v:imagedata src=3D"LNADesignHFE2_07_files/image019.png" o:title=3D"SC1C2"=
/>
</v:shape><![endif]--><![if !vml]><img border=3D0 width=3D586 height=3D471
src=3D"LNADesignHFE2_07_files/image020.jpg" v:shapes=3D"_x0000_i1033"><![en=
dif]></p>

<p class=3DMsoCaption align=3Dcenter style=3D'text-align:center'>Figure <!-=
-[if supportFields]><span
style=3D'mso-element:field-begin'></span><span
style=3D'mso-spacerun:yes'>&nbsp;</span>SEQ Figure \* ARABIC <span
style=3D'mso-element:field-separator'></span><![endif]--><span style=3D'mso=
-no-proof:
yes'>9</span><!--[if supportFields]><span style=3D'mso-element:field-end'><=
/span><![endif]-->,
Input and Output Return Loss Simulation Results</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>The next step is to add the bias networks and construc=
t the
0.35 nH source lead inductor from microstrip transmission lines and ground =
vias
as shown in Figure 10.<span style=3D'mso-spacerun:yes'>&nbsp; </span>The
component values in Figure 10 have been changed to the nearest available
standard value.<span style=3D'mso-spacerun:yes'>&nbsp; </span>The shunt inp=
ut
inductor is connected to the gate supply and a 68 nH choke is used to suppl=
y DC
to the drain.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<h1>Design Verification</h1>

<p class=3DMsoNormal>Running a simulation of the LNA circuit in Figure 7 pr=
ovides
a certain level of design verification since the computer methods and
algorithms used in the LINC2 circuit simulation are very different and
independent from the synthesis algorithms used to generate the design in Fi=
gure
6.<span style=3D'mso-spacerun:yes'>&nbsp; </span>Ultimately, however, the d=
esign
must be verified by building a prototype and testing it.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>The circuit in Figure 10 was built=
 and
tested.<span style=3D'mso-spacerun:yes'>&nbsp; </span>The measured performa=
nce
was remarkably close to the results obtained from the LINC2 circuit simulat=
ion
(Table 1 and Figures 8 and 9).</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>The measured versus simulated results are shown in Tab=
le
2.<span style=3D'mso-spacerun:yes'>&nbsp; </span>Figure 11 plots the simula=
ted
and measured gain and noise figure.<span style=3D'mso-spacerun:yes'>&nbsp;
</span>Figure 12 plots the simulated and measured input and output return
loss.<span style=3D'mso-spacerun:yes'>&nbsp; </span>The measured gain, NF a=
nd
input RL agreed with simulation within a fraction of a dB.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>The output return loss measured lo=
wer
than the simulated value by about 1.25 dB.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<h1>Summary</h1>

<p class=3DMsoNormal>This LNA design example demonstrated how the unique fe=
atures
of the LINC2 LNA design tool can simplify the complex task of balancing a
number of competing design tradeoffs.<span style=3D'mso-spacerun:yes'>&nbsp;
</span>LINC2&#8217;s automated interactive optimization at the design level
(during the circuit synthesis procedure) can be far more effective than cir=
cuit
level optimization.<span style=3D'mso-spacerun:yes'>&nbsp; </span>In additi=
on to
being faster than circuit level optimization, interactive optimization at t=
he
design synthesis level allows for optimization of the circuit topology, not
just the component values of a given topology.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>For example, circuit level optimiz=
ation
starts with a given circuit topology while in the LINC2 LNA synthesis tool =
the
circuit topology (matching networks) are selected last, after all tradeoffs
have been made and the design has been optimized.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>It is not uncommon for leading RF/microwave EDA softwa=
re
packages to have utilities for plotting various circles on a Smith Chart to=
 aid
in the design of low noise amplifiers.<span style=3D'mso-spacerun:yes'>&nbs=
p;
</span>However, these other circle plotting tools are usually manual in nat=
ure
in the sense that they require the user to know what circles to plot and ho=
w to
relate the circles to one another and to the design flow.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>The LINC2 Circles Utility is compl=
etely
automated and linked to the design flow.<span style=3D'mso-spacerun:yes'>&n=
bsp;
</span>This allows the user to focus on the design goals and the parameters
that affect performance rather than on the construction of circles.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>The underlying math routines and LINC2 proprietary
algorithms keep the circles and printed design and performance data updated=
 as
the user enters specifications or makes design tradeoffs.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>This highly automated LINC2 design=
 tool
makes the various constant circles practically obsolete because the user is
guided through the design procedure without having to construct the circles=
 or
even having to know what they mean.<span style=3D'mso-spacerun:yes'>&nbsp;
</span>However, experienced designers who are accustomed to designing LNAs =
by
manipulation of the constant circles will appreciate the visual feedback
provided by the automatically displayed circles and the fact that they can =
also
be manually constructed by the user if desired.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>This kind of graphical feedback ca=
n help
the user know what is possible in regard to performance and why.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>This level of insight into the
parameters that affect the design and its performance as well as the insight
into the design methods and synthesis process cannot be provided by simply
using a circuit level optimizer.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal>LINC2 is a high performance, low cost, RF and microwave
design environment providing automated design, circuit synthesis, schematic
capture, simulation, optimization and yield analysis in one integrated pack=
age.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>LINC2 is available from ACS (Appli=
ed
Computational Sciences), <st1:place w:st=3D"on"><st1:City w:st=3D"on">Escon=
dido</st1:City>,
 <st1:State w:st=3D"on">CA</st1:State></st1:place>.<span
style=3D'mso-spacerun:yes'>&nbsp; </span>More information on LINC2 can be f=
ound
on the web at <a href=3D"http://www.appliedmicrowave.com/">www.appliedmicro=
wave.com</a>.</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;page-break-a=
fter:avoid'><!--[if gte vml 1]><v:shape
 id=3D"_x0000_i1034" type=3D"#_x0000_t75" style=3D'width:400.5pt;height:283=
.5pt'>
 <v:imagedata src=3D"LNADesignHFE2_07_files/image021.png" o:title=3D"Sch_Bi=
asViasC"/>
</v:shape><![endif]--><![if !vml]><img border=3D0 width=3D534 height=3D378
src=3D"LNADesignHFE2_07_files/image022.jpg" v:shapes=3D"_x0000_i1034"><![en=
dif]></p>

<p class=3DMsoCaption align=3Dcenter style=3D'text-align:center'>Figure <!-=
-[if supportFields]><span
style=3D'mso-element:field-begin'></span><span
style=3D'mso-spacerun:yes'>&nbsp;</span>SEQ Figure \* ARABIC <span
style=3D'mso-element:field-separator'></span><![endif]--><span style=3D'mso=
-no-proof:
yes'>10</span><!--[if supportFields]><span style=3D'mso-element:field-end'>=
</span><![endif]-->,
Prototype LNA Circuit Schematic</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoCaption align=3Dcenter style=3D'text-align:center;page-break-=
after:
avoid'>Table <!--[if supportFields]><span style=3D'mso-element:field-begin'=
></span><span
style=3D'mso-spacerun:yes'>&nbsp;</span>SEQ Table \* ARABIC <span
style=3D'mso-element:field-separator'></span><![endif]--><span style=3D'mso=
-no-proof:
yes'>2</span><!--[if supportFields]><span style=3D'mso-element:field-end'><=
/span><![endif]-->,
LNA Simulated Versus Measured Results</p>

<div align=3Dcenter>

<table class=3DMsoNormalTable border=3D0 cellspacing=3D0 cellpadding=3D0
 style=3D'border-collapse:collapse;mso-padding-alt:0in 1.5pt 0in 1.5pt'>
 <tr style=3D'mso-yfti-irow:0;mso-yfti-firstrow:yes;page-break-inside:avoid;
  height:12.35pt'>
  <td width=3D121 valign=3Dtop style=3D'width:90.7pt;border:solid windowtex=
t 1.0pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal style=3D'mso-layout-grid-align:none;text-autospace:n=
one'><span
  style=3D'font-size:10.0pt;font-family:Arial;color:black'>Specification<o:=
p></o:p></span></p>
  </td>
  <td width=3D79 valign=3Dtop style=3D'width:59.5pt;border:solid windowtext=
 1.0pt;
  border-left:none;mso-border-left-alt:solid windowtext .75pt;mso-border-al=
t:
  solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:12.35pt'>
  <p class=3DMsoNormal style=3D'mso-layout-grid-align:none;text-autospace:n=
one'><span
  style=3D'font-size:10.0pt;font-family:Arial;color:black'>Goal<o:p></o:p><=
/span></p>
  </td>
  <td width=3D168 colspan=3D3 valign=3Dtop style=3D'width:1.75in;border:sol=
id windowtext 1.0pt;
  border-left:none;mso-border-left-alt:solid windowtext .75pt;mso-border-al=
t:
  solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:12.35pt'>
  <p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;mso-layout=
-grid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>Simulation<o:p></o:p></span></p>
  </td>
  <td width=3D224 colspan=3D3 valign=3Dtop style=3D'width:168.15pt;border:s=
olid windowtext 1.0pt;
  border-left:none;mso-border-left-alt:solid windowtext .75pt;mso-border-al=
t:
  solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:12.35pt'>
  <p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;mso-layout=
-grid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>Measured<o:p></o:p></span></p>
  </td>
 </tr>
 <tr style=3D'mso-yfti-irow:1;height:12.35pt'>
  <td width=3D121 valign=3Dtop style=3D'width:90.7pt;border:solid windowtex=
t 1.0pt;
  border-top:none;mso-border-top-alt:solid windowtext .75pt;mso-border-alt:
  solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:12.35pt'>
  <p class=3DMsoNormal style=3D'mso-layout-grid-align:none;text-autospace:n=
one'><span
  style=3D'font-size:10.0pt;font-family:Arial;color:black'>Frequency (MHz)<=
o:p></o:p></span></p>
  </td>
  <td width=3D79 valign=3Dtop style=3D'width:59.5pt;border-top:none;border-=
left:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal style=3D'mso-layout-grid-align:none;text-autospace:n=
one'><span
  style=3D'font-size:10.0pt;font-family:Arial;color:black'>1574 - 1576<o:p>=
</o:p></span></p>
  </td>
  <td width=3D60 valign=3Dtop style=3D'width:45.0pt;border-top:none;border-=
left:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>1574<o:p></o:p></span></p>
  </td>
  <td width=3D60 valign=3Dtop style=3D'width:45.0pt;border-top:none;border-=
left:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>1575<o:p></o:p></span></p>
  </td>
  <td width=3D48 valign=3Dtop style=3D'width:.5in;border-top:none;border-le=
ft:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>1576<o:p></o:p></span></p>
  </td>
  <td width=3D72 valign=3Dtop style=3D'width:.75in;border-top:none;border-l=
eft:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>1574<o:p></o:p></span></p>
  </td>
  <td width=3D72 valign=3Dtop style=3D'width:.75in;border-top:none;border-l=
eft:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>1575<o:p></o:p></span></p>
  </td>
  <td width=3D80 valign=3Dtop style=3D'width:60.15pt;border-top:none;border=
-left:
  none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1=
.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>1576<o:p></o:p></span></p>
  </td>
 </tr>
 <tr style=3D'mso-yfti-irow:2;height:12.35pt'>
  <td width=3D121 valign=3Dtop style=3D'width:90.7pt;border:solid windowtex=
t 1.0pt;
  border-top:none;mso-border-top-alt:solid windowtext .75pt;mso-border-alt:
  solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:12.35pt'>
  <p class=3DMsoNormal style=3D'mso-layout-grid-align:none;text-autospace:n=
one'><span
  style=3D'font-size:10.0pt;font-family:Arial;color:black'>Power Gain (dB)<=
o:p></o:p></span></p>
  </td>
  <td width=3D79 valign=3Dtop style=3D'width:59.5pt;border-top:none;border-=
left:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal style=3D'mso-layout-grid-align:none;text-autospace:n=
one'><span
  style=3D'font-size:10.0pt;font-family:Arial;color:black'>&gt; 16<o:p></o:=
p></span></p>
  </td>
  <td width=3D60 valign=3Dtop style=3D'width:45.0pt;border-top:none;border-=
left:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>17.13<o:p></o:p></span></p>
  </td>
  <td width=3D60 valign=3Dtop style=3D'width:45.0pt;border-top:none;border-=
left:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>17.12<o:p></o:p></span></p>
  </td>
  <td width=3D48 valign=3Dtop style=3D'width:.5in;border-top:none;border-le=
ft:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>17.11<o:p></o:p></span></p>
  </td>
  <td width=3D72 valign=3Dtop style=3D'width:.75in;border-top:none;border-l=
eft:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>17.75<o:p></o:p></span></p>
  </td>
  <td width=3D72 valign=3Dtop style=3D'width:.75in;border-top:none;border-l=
eft:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>17.74<o:p></o:p></span></p>
  </td>
  <td width=3D80 valign=3Dtop style=3D'width:60.15pt;border-top:none;border=
-left:
  none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1=
.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>17.71<o:p></o:p></span></p>
  </td>
 </tr>
 <tr style=3D'mso-yfti-irow:3;height:12.35pt'>
  <td width=3D121 valign=3Dtop style=3D'width:90.7pt;border:solid windowtex=
t 1.0pt;
  border-top:none;mso-border-top-alt:solid windowtext .75pt;mso-border-alt:
  solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:12.35pt'>
  <p class=3DMsoNormal style=3D'mso-layout-grid-align:none;text-autospace:n=
one'><span
  style=3D'font-size:10.0pt;font-family:Arial;color:black'>Noise Figure (dB=
)<o:p></o:p></span></p>
  </td>
  <td width=3D79 valign=3Dtop style=3D'width:59.5pt;border-top:none;border-=
left:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal style=3D'mso-layout-grid-align:none;text-autospace:n=
one'><span
  style=3D'font-size:10.0pt;font-family:Arial;color:black'>&lt; 1.0<o:p></o=
:p></span></p>
  </td>
  <td width=3D60 valign=3Dtop style=3D'width:45.0pt;border-top:none;border-=
left:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>0.4<o:p></o:p></span></p>
  </td>
  <td width=3D60 valign=3Dtop style=3D'width:45.0pt;border-top:none;border-=
left:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>0.4<o:p></o:p></span></p>
  </td>
  <td width=3D48 valign=3Dtop style=3D'width:.5in;border-top:none;border-le=
ft:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>0.4<o:p></o:p></span></p>
  </td>
  <td width=3D72 valign=3Dtop style=3D'width:.75in;border-top:none;border-l=
eft:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>0.68/0.38*<o:p></o:p></span></p>
  </td>
  <td width=3D72 valign=3Dtop style=3D'width:.75in;border-top:none;border-l=
eft:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>0.67/0.37*<o:p></o:p></span></p>
  </td>
  <td width=3D80 valign=3Dtop style=3D'width:60.15pt;border-top:none;border=
-left:
  none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1=
.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>0.66/0.36*<o:p></o:p></span></p>
  </td>
 </tr>
 <tr style=3D'mso-yfti-irow:4;height:12.35pt'>
  <td width=3D121 valign=3Dtop style=3D'width:90.7pt;border:solid windowtex=
t 1.0pt;
  border-top:none;mso-border-top-alt:solid windowtext .75pt;mso-border-alt:
  solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:12.35pt'>
  <p class=3DMsoNormal style=3D'mso-layout-grid-align:none;text-autospace:n=
one'><span
  style=3D'font-size:10.0pt;font-family:Arial;color:black'>Input RL (dB)<o:=
p></o:p></span></p>
  </td>
  <td width=3D79 valign=3Dtop style=3D'width:59.5pt;border-top:none;border-=
left:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal style=3D'mso-layout-grid-align:none;text-autospace:n=
one'><span
  style=3D'font-size:10.0pt;font-family:Arial;color:black'>&gt; 13.98<o:p><=
/o:p></span></p>
  </td>
  <td width=3D60 valign=3Dtop style=3D'width:45.0pt;border-top:none;border-=
left:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>14.48<o:p></o:p></span></p>
  </td>
  <td width=3D60 valign=3Dtop style=3D'width:45.0pt;border-top:none;border-=
left:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>14.47<o:p></o:p></span></p>
  </td>
  <td width=3D48 valign=3Dtop style=3D'width:.5in;border-top:none;border-le=
ft:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>14.46<o:p></o:p></span></p>
  </td>
  <td width=3D72 valign=3Dtop style=3D'width:.75in;border-top:none;border-l=
eft:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>14.03<o:p></o:p></span></p>
  </td>
  <td width=3D72 valign=3Dtop style=3D'width:.75in;border-top:none;border-l=
eft:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>14.02<o:p></o:p></span></p>
  </td>
  <td width=3D80 valign=3Dtop style=3D'width:60.15pt;border-top:none;border=
-left:
  none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1=
.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>14.02<o:p></o:p></span></p>
  </td>
 </tr>
 <tr style=3D'mso-yfti-irow:5;mso-yfti-lastrow:yes;height:12.35pt'>
  <td width=3D121 valign=3Dtop style=3D'width:90.7pt;border:solid windowtex=
t 1.0pt;
  border-top:none;mso-border-top-alt:solid windowtext .75pt;mso-border-alt:
  solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:12.35pt'>
  <p class=3DMsoNormal style=3D'mso-layout-grid-align:none;text-autospace:n=
one'><span
  style=3D'font-size:10.0pt;font-family:Arial;color:black'>Output RL (dB)<o=
:p></o:p></span></p>
  </td>
  <td width=3D79 valign=3Dtop style=3D'width:59.5pt;border-top:none;border-=
left:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal style=3D'mso-layout-grid-align:none;text-autospace:n=
one'><span
  style=3D'font-size:10.0pt;font-family:Arial;color:black'>&gt; 9.54<o:p></=
o:p></span></p>
  </td>
  <td width=3D60 valign=3Dtop style=3D'width:45.0pt;border-top:none;border-=
left:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>11.39<o:p></o:p></span></p>
  </td>
  <td width=3D60 valign=3Dtop style=3D'width:45.0pt;border-top:none;border-=
left:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>11.4<o:p></o:p></span></p>
  </td>
  <td width=3D48 valign=3Dtop style=3D'width:.5in;border-top:none;border-le=
ft:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>11.42<o:p></o:p></span></p>
  </td>
  <td width=3D72 valign=3Dtop style=3D'width:.75in;border-top:none;border-l=
eft:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>10.18<o:p></o:p></span></p>
  </td>
  <td width=3D72 valign=3Dtop style=3D'width:.75in;border-top:none;border-l=
eft:none;
  border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>10.17<o:p></o:p></span></p>
  </td>
  <td width=3D80 valign=3Dtop style=3D'width:60.15pt;border-top:none;border=
-left:
  none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1=
.0pt;
  mso-border-top-alt:solid windowtext .75pt;mso-border-left-alt:solid windo=
wtext .75pt;
  mso-border-alt:solid windowtext .75pt;padding:0in 1.5pt 0in 1.5pt;height:
  12.35pt'>
  <p class=3DMsoNormal align=3Dright style=3D'text-align:right;mso-layout-g=
rid-align:
  none;text-autospace:none'><span style=3D'font-size:10.0pt;font-family:Ari=
al;
  color:black'>10.17<o:p></o:p></span></p>
  </td>
 </tr>
</table>

</div>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center'>*NF after a=
djusting
for 0.3 dB total front-end component losses in cable, connector and input
microstrip.</p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center'><o:p>&nbsp;=
</o:p></p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;page-break-a=
fter:avoid'><!--[if gte vml 1]><v:shape
 id=3D"_x0000_i1035" type=3D"#_x0000_t75" style=3D'width:464.25pt;height:32=
0.25pt'
 o:ole=3D"">
 <v:imagedata src=3D"LNADesignHFE2_07_files/image023.wmz" o:title=3D""/>
</v:shape><![endif]--><![if !vml]><img border=3D0 width=3D619 height=3D427
src=3D"LNADesignHFE2_07_files/image024.gif" v:shapes=3D"_x0000_i1035"><![en=
dif]><!--[if gte mso 9]><xml>
 <o:OLEObject Type=3D"Embed" ProgID=3D"Excel.Sheet.8" ShapeID=3D"_x0000_i10=
35"
  DrawAspect=3D"Content" ObjectID=3D"_1233633275">
 </o:OLEObject>
</xml><![endif]--></p>

<p class=3DMsoCaption align=3Dcenter style=3D'text-align:center'>Figure <!-=
-[if supportFields]><span
style=3D'mso-element:field-begin'></span><span
style=3D'mso-spacerun:yes'>&nbsp;</span>SEQ Figure \* ARABIC <span
style=3D'mso-element:field-separator'></span><![endif]--><span style=3D'mso=
-no-proof:
yes'>11</span><!--[if supportFields]><span style=3D'mso-element:field-end'>=
</span><![endif]-->,
LNA Simulated and Measured Gain and Noise Figure</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;page-break-a=
fter:avoid'><!--[if gte vml 1]><v:shape
 id=3D"_x0000_i1036" type=3D"#_x0000_t75" style=3D'width:464.25pt;height:32=
0.25pt'
 o:ole=3D"">
 <v:imagedata src=3D"LNADesignHFE2_07_files/image025.wmz" o:title=3D""/>
</v:shape><![endif]--><![if !vml]><img border=3D0 width=3D619 height=3D427
src=3D"LNADesignHFE2_07_files/image026.gif" v:shapes=3D"_x0000_i1036"><![en=
dif]><!--[if gte mso 9]><xml>
 <o:OLEObject Type=3D"Embed" ProgID=3D"Excel.Sheet.8" ShapeID=3D"_x0000_i10=
36"
  DrawAspect=3D"Content" ObjectID=3D"_1233633277">
 </o:OLEObject>
</xml><![endif]--></p>

<p class=3DMsoCaption align=3Dcenter style=3D'text-align:center'>Figure <!-=
-[if supportFields]><span
style=3D'mso-element:field-begin'></span><span
style=3D'mso-spacerun:yes'>&nbsp;</span>SEQ Figure \* ARABIC <span
style=3D'mso-element:field-separator'></span><![endif]--><span style=3D'mso=
-no-proof:
yes'>12</span><!--[if supportFields]><span style=3D'mso-element:field-end'>=
</span><![endif]-->,
LNA Simulated and Measured Return Loss</p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoHeader><b style=3D'mso-bidi-font-weight:normal'>References<o:=
p></o:p></b></p>

<p class=3DMsoHeader><o:p>&nbsp;</o:p></p>

<p class=3DMsoHeader>[1] Dale D. Henkes, &#8220;LNA Design Uses Series Feed=
back
to Achieve Simultaneous Low Input VSWR and Low Noise&#8221;, Applied Microw=
ave
&amp; Wireless, October 1998, pp. 26-32.</p>

<p class=3DMsoHeader><o:p>&nbsp;</o:p></p>

<p class=3DMsoHeader>[2] Janusz A. Dobrowolski &amp; Wojciech Ostrowski,
&#8220;Computer-Aided Analysis, Modeling, and Design of Microwave
Networks&#8221;, Artech House, 1996.</p>

<p class=3DMsoHeader><o:p>&nbsp;</o:p></p>

<p class=3DMsoHeader>[3] Guillermo Gonzalez, &#8220;Microwave Transistor
Amplifiers - Analysis and Design&#8221;, Prentice-Hall, 1984.</p>

<p class=3DMsoHeader><o:p>&nbsp;</o:p></p>

<p class=3DMsoHeader>[4] Robert E. Collin, &#8220;Foundations for Microwave
Engineering&#8221; 2<sup>nd</sup> edition, McGraw-Hill, 1992.</p>

<p class=3DMsoHeader style=3D'tab-stops:.5in'><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;tab-stops:17=
9.25pt'><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;tab-stops:17=
9.25pt'><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center;tab-stops:17=
9.25pt'><a
href=3D"http://www.appliedmicrowave.com/"><b style=3D'mso-bidi-font-weight:=
normal'><span
style=3D'font-size:16.0pt'>[RETURN]</span></b></a><b style=3D'mso-bidi-font=
-weight:
normal'><span style=3D'font-size:16.0pt;color:blue'><o:p></o:p></span></b><=
/p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center'><o:p>&nbsp;=
</o:p></p>

<p class=3DMsoNormal align=3Dcenter style=3D'text-align:center'><o:p>&nbsp;=
</o:p></p>

<p class=3DMsoNormal><o:p>&nbsp;</o:p></p>

<p class=3DMsoNormal align=3Dright style=3D'text-align:right'><o:p>&nbsp;</=
o:p></p>

</div>

</body>

</html>

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