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CLC446AMC Datasheet(PDF) 6 Page - National Semiconductor (TI)

[Old version datasheet] Texas Instruments acquired National semiconductor.
No. de pieza CLC446AMC
Descripción Electrónicos  400MHz, 50mW Current-Feedback Op Amp
PDF  12 Pages
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Fabricante Electrónico  NSC [National Semiconductor (TI)]
Página de inicio  http://www.national.com
Logo NSC - National Semiconductor (TI)

CLC446AMC Datasheet(HTML) 6 Page - National Semiconductor (TI)

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6
where
DC Design (DC offsets)
The DC offset model shown in Figure 6 is used to
calculate the output offset voltage. The equation for out-
put offset voltage is:
The current offset terms, IBN and IBI , do not track each
other. The specifications are stated in terms of magni-
tude only. Therefore, the terms Vos, IBN, and IBI can have
either polarity. Matching the equivalent resistance seen
at both input pins does not reduce the output
offset voltage.
Figure 6: DC Offset Model
DC Design (output loading)
RL, Rf, and Rg load the op amp output. The equivalent
load seen by the output in Figure 6 is:
RL(eq) = RL || (Rf + Req2), non-inverting gain
RL(eq) = RL || Rf, inverting gain
RL(eq) needs to be large enough so that the minimum out-
put current can produce the required output voltage
swing.
AC Design (small signal bandwidth)
The CLC446 current-feedback amplifier bandwidth is
a function of the feedback resistor (Rf), not of the DC
voltage gain (AV). The bandwidth is approximately
proportional to
. As a rule, if Rf doubles, the band-
width is cut in half. Other AC specifications will also be
degraded. Decreasing Rf from the recommended value
increases peaking, and
for very small values of Rf oscil-
lation will occur.
AC Design (minimum slew rate)
Slew rate influences the bandwidth of large signal
sinusoids. To determine an approximate value of slew
rate necessary to support a large sinusoid, use the
following equation:
SR
≅ 5 f V
peak
where Vpeak is the peak output sinusoidal voltage.
The slew rate of the CLC446 in inverting gains is always
higher than in non-inverting gains.
AC Design (linear phase/constant group delay)
The recommended value of Rf produces minimal
peaking and a reasonably linear phase response.
To improve phase linearity when |Av| < 5, increase Rf
approximately 50% over its recommended value. Some
adjustment of Rf may be needed to achieve phase lin-
earity for your application. See the
AC Design (small
signal bandwidth) sub-section for other effects of
changing Rf.
Propagation delay is approximately equal to group delay.
Group delay is related to phase by this equation:
where
φ(f) is the phase in degrees. Linear phase implies
constant group delay. The technique for achieving linear
phase also produces a constant group delay.
AC Design (peaking)
Peaking is sometimes observed with the recommended
Rf. If a small increase in Rf does not solve the problem,
then investigate the possible causes and remedies
listed below.
s
Capacitance across Rf
s
Do not place a capacitor across Rf
s
Use a resistor with low parasitic
capacitance for Rf
s
A capacitive load
s
Use a series resistor between the output and
a capacitive load (see the
Recommended
Rs vs. CL plot)
s
Long traces and/or lead lengths between Rf and
the CLC446
s
Keep these traces as short as possible
For non-inverting and transimpedance gain configurations:
s
Extra capacitance between the inverting pin
and ground (Cg)
s
See the
Printed Circuit Board Layout sub-
section below for suggestions on reducing Cg
s
Increase Rf if peaking is still observed after
reducing Cg
For inverting gain configurations:
s
Inadequate ground plane at the non-inverting pin
and/or long traces between non-inverting pin
and ground
s
Place a 50 to 200
Ω resistor between the non-
inverting pin and ground (see Rt in Figure 2)
Capacitive Loads
Capacitive loads, such as found in A/D converters,
require a series resistor (Rs) in the output to
improve settling performance.
The
Recommended
Rs vs. CL plot in the Typical Performance
Characteristics section provides the information for
selecting this resistor.
sj
RR
C
RC
11
2
1
2
g
2
=
=
()
=⋅
ω
τ
τ
VV
I
R
1
R
R
IR
oos
BN
eq1
f
eq2
BI
f
=−
+
()⋅+
 +⋅
()
Req1
Rf
+
-
Req2
CLC446
IBI
IBN
Vos
Vo
RL
+
-
1
Rf
τ
φφ
gd
f
1
360
df
df
f
f
=
() =−
°
()
≈−
()



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