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ADA4625-2ARDZ-R7 Folha de dados(PDF) 28 Page - Analog Devices

Nome de Peças ADA4625-2ARDZ-R7
Descrição Electrónicos  36V 18MHz Low Noise, Fast Settling Single Supply, RRO, JFET Op Amp
PDF  35 Pages
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Fabricante Electrônico  AD [Analog Devices]
Página de início  http://www.analog.com
Logo AD - Analog Devices

ADA4625-2ARDZ-R7 Folha de dados(HTML) 28 Page - Analog Devices

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ADA4625-1/ADA4625-2
Data Sheet
Rev. A | Page 28 of 35
It is important to distinguish between the signal gain and the
noise gain (NG) because the noise gain characteristics
determine the net circuit stability. The noise gain has the same
transfer function as the noninverting signal gain, which follows:
F
F
F
IN
SH
F
SH
F
C
sR
C
C
R
R
s
R
R
NG
+
+
+
×


+
=
1
)
)(
//
(
1
1
(2)
where:
RSH is the diode shunt resistance.
CIN is the total input capacitance consisting of the sum of the
diode shunt capacitance (CD), the input capacitance of the
amplifier (CDM + CCM), and the external stray capacitance.
CIN and RF produce a zero in the noise gain transfer function
and the zero frequency (fZ) is as follows:
)
)(
//
(
2
1
F
IN
SH
F
Z
C
C
R
R
f
+
π
=
(3)
Because the photodiode shunt resistance RSH >> RF, the circuit
behavior is not impacted by the effect of the junction resistance,
and fZ simplifies to
)
(
1
F
IN
F
Z
C
C
R
f
+
=
(4)
Figure 100 shows the TIA noise gain superimposed upon the open
loop gain of the amplifier. For the system to be stable, the noise gain
curve must intersect with the open loop response with a net slope
of less than 20 dB/decade. In Figure 100, the dotted line shows an
uncompensated noise gain (CF = 0 pF) intersecting with the open
loop gain at the frequency (fX) with a slope of 20 dB/decade,
indicating an unstable condition.
fZ
fp
fx
fN
fGBP
FREQUENCY
UNCOMPENSATED
(CF = 0pF)
CF
CIN
OPEN LOOP GAIN
NOISE GAIN
SIGNAL BANDWIDTH
COMPENSATED
1 +
R1
R2
1 +
Figure 100. Generalized TIA Noise Gain and Transfer Function
The instability caused by CIN can be compensated by adding CF to
introduce a pole at a frequency equal to or lower than fX. The pole
frequency is as follows:
F
F
P
C
R
f
1
=
(5)
Setting the pole at the fX frequency maximizes the signal bandwidth
with a 45° phase margin but is marginal for stability, as indicated by
the dashed line. Because fX is the geometric mean of fZ and the
gain bandwidth product frequency (fGBP) of the amplifier,
calculate fX by
GBP
Z
X
f
f
f
=
(6)
Substituting Equation 4 and Equation 5 into Equation 6, the CF
value that produces fX is
GBP
F
GBP
IN
F
F
f
R
f
C
R
C
π
π
+
+
=
4
8
1
1
(7)
If 8π × RF × CIN × fGBP >> 1, Equation 7 simplifies to
GBP
F
IN
F
f
R
C
C
π
=
2
(8)
Adding CF also sets the signal bandwidth at fP. Substitute
Equation 8 into Equation 5 and rearrange the equation for the
signal bandwidth in terms of fGBP, RF, and CIN:
IN
F
GBP
P
C
R
f
f
π
=
2
(9)
Notice the attainable signal bandwidth is a function of the time
constant RFCIN and the fGBP of the amplifier. To maximize the
signal bandwidth, choose an op amp with high bandwidth and
low input capacitance, and operate the photodiode in reverse
bias to reduce its junction capacitance.
Because the input current noise of the FET input op amp is
negligible, and the shot noise of the photodiode is negligible
due to the filtering effect of the shunt capacitance, the dominant
sources of output noise in the wideband photodiode TIA circuit
are the input voltage noise of the amplifier eN and the thermal
noise generated by RF.
At low frequencies, the circuit noise gain is 1 + RF/RSH. At
frequencies equal to or greater than fZ, the noise gain begins to
increase and plateau when the gain is 1 + CIN/CF (see Figure 100).
In addition, the noise bandwidth frequency, fN (where the
compensated noise gain intersecting the open loop gain), can
be estimated by
GBP
F
IN
F
N
f
C
C
C
f
)
(
+
=
(10)



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