HFA1130IBZ Intersil, HFA1130IBZ Datasheet - Page 5

IC OP AMP 850MHZ CFB 8-SOIC

HFA1130IBZ

Manufacturer Part Number
HFA1130IBZ
Description
IC OP AMP 850MHZ CFB 8-SOIC
Manufacturer
Intersil
Datasheet

Specifications of HFA1130IBZ

Amplifier Type
Current Feedback
Number Of Circuits
1
Slew Rate
2300 V/µs
-3db Bandwidth
850MHz
Current - Input Bias
25µA
Voltage - Input Offset
2000µV
Current - Supply
21mA
Current - Output / Channel
60mA
Voltage - Supply, Single/dual (±)
±4.5 V ~ 5.5 V
Operating Temperature
-40°C ~ 85°C
Mounting Type
Surface Mount
Package / Case
8-SOIC (3.9mm Width)
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Output Type
-
Gain Bandwidth Product
-

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Part Number:
HFA1130IBZ
Manufacturer:
Intersil
Quantity:
86
reaches a voltage equal to Q
Q
R
clamp inputs floating. A similar description applies to the
symmetrical low clamp circuitry controlled by V
When the output is clamped, the negative input continues to
source a slewing current (I
output to the quiescent voltage defined by the input. Q
must sink this current while clamping, because the -IN
current is always mirrored onto the high impedance node.
The clamping current is calculated as (V
an example, a unity gain circuit with V
R
Note that I
clamp limited.
Clamp Accuracy
The clamped output voltage will not be exactly equal to the
voltage applied to V
mismatches, necessitate a clamp accuracy parameter which is
found in the device specifications. Clamp accuracy is a function
of the clamping conditions. Referring again to Figure 1, it can
be seen that one component of clamp accuracy is the V
mismatch between the Q
transistors. If the transistors always ran at the same current
level there would be no V
the inaccuracy. The Q
current, but as described earlier, the current through Q
equivalent to I
causing the clamped output voltage to increase as well. I
is a function of the overdrive level (V
R
as R
±60mV for a 2X overdrive with R
for R
overdrive with R
Consideration must also be given to the fact that the clamp
voltages have an effect on amplifier linearity. The
“Nonlinearity Near Clamp Voltage” curve in the data sheet
illustrates the impact of several clamp levels on linearity.
Clamp Range
Unlike some competitor devices, both V
ranges that cross 0V. While V
both may be positive or negative, within the range restrictions
indicated in the specifications. For example, the HFA1130 could
be limited to ECL output levels by setting V
V
(GND for instance) but the result won’t be in a DC output
voltage from an AC input signal. A 150 - 200mV AC signal will
still be present at the output.
Recovery from Overdrive
The output voltage remains at the clamp level as long as the
overdrive condition remains. When the input voltage drops
below the overdrive level (V
L
1
F
F
N5
, so clamp accuracy degrades as the overdrive increases, or
provides a pull-up network to ensure functionality with the
= -1.8V. V
= 510Ω would have I
). Thus, Q
F
F
decreases. As an example, the specified accuracy of
= 240Ω at the same overdrive, or to ±250mV for a 3X
CC
H
CLAMP
will increase by I
P5
and V
F
= 510Ω.
clamps node Z whenever Z reaches V
H
. V
L
or V
X6
may be connected to the same voltage
BE
transistors are biased at a constant
X6
CLAMP
BE
L
increases as I
. Offset errors, mostly due to V
CLAMP
transistors, and the Q
mismatch, and no contribution to
CLAMP
H
P5
5
must be more positive than V
F
CLAMP
’s base + 2V
= (2-1)/510Ω = 1.96mA.
= 510Ω degrades to ±220mV
) in an attempt to force the
-IN
/A
VCL
IN
-V
H
when the output is
CLAMP
-IN
OUTCLAMPED
and V
= 2V, V
H
) the amplifier will
= -0.8V and
- V
BE
L
OUT
increases,
L
(Q
have usable
X5
H
.
P5
= 1V, and
)/R
X5
and
CLAMP
BE
F
) and
P5
. As
is
BE
H
.
L
HFA1130
,
return to linear operation. A time delay, known as the
Overdrive Recovery Time, is required for this resumption of
linear operation. The plots of “Unclamped Performance” and
“Clamped Performance” highlight the HFA1130’s
subnanosecond recovery time. The difference between the
unclamped and clamped propagation delays is the overdrive
recovery time. The appropriate propagation delays are 4.0ns
for the unclamped pulse, and 4.8ns for the clamped (2X
overdrive) pulse yielding an overdrive recovery time of
800ps. The measurement uses the 90% point of the output
transition to ensure that linear operation has resumed.
Note: The propagation delay illustrated is dominated by the
fixturing. The delta shown is accurate, but the true HFA1130
propagation delay is 500ps.
Use of Die in Hybrid Applications
This amplifier is designed with compensation to negate the
package parasitics that typically lead to instabilities. As a
result, the use of die in hybrid applications results in
overcompensated performance due to lower parasitic
capacitances. Reducing R
for packaged units will solve the problem. For A
recommended starting point is 300Ω, while unity gain
applications should try 400Ω.
PC Board Layout
The frequency performance of this amplifier depends a great
deal on the amount of care taken in designing the PC board.
The use of low inductance components such as chip
resistors and chip capacitors is strongly recommended,
while a solid ground plane is a must!
Attention should be given to decoupling the power supplies.
A large value (10µF) tantalum in parallel with a small value
chip (0.1µF) capacitor works well in most cases.
Terminated microstrip signal lines are recommended at the
input and output of the device. Output capacitance, such as
that resulting from an improperly terminated transmission
line will degrade the frequency response of the amplifier and
may cause oscillations. In most cases, the oscillation can be
avoided by placing a resistor in series with the output.
Care must also be taken to minimize the capacitance to
ground seen by the amplifier’s inverting input. The larger this
capacitance, the worse the gain peaking, resulting in pulse
overshoot and possible instability. To this end, it is
recommended that the ground plane be removed under
traces connected to pin 2, and connections to pin 2 should
be kept as short as possible.
An example of a good high frequency layout is the
Evaluation Board shown below.
F
below the recommended values
V
= +2 the
July 15, 2005
FN3369.4

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