
N
CLC428
Dual Wideband, Low-Noise, Voltage Feedback Op Amp
General Description
The CLC428 is a very high-speed dual op amp that offers a traditional
voltage-feedback topology featuring unity-gain stability and slew-
enhanced circuitry. The CLC428’s ultra low noise and very low
harmonic distortion combine to form a very wide dynamic-range op
amp that operates from a single (5 to 12V) or dual (±5V) power supply.
Each of the CLC428’s closely matched channels provides a 160MHz
unity-gain bandwidth with an ultra low input voltage noise density
(2nV/
√
Hz). Very low 2nd/3rd harmonic distortion (-62/-72dBc) as well
as high channel-to-channel isolation (-62dB) make the CLC428 a
perfect wide dynamic-range amplifier for matched I/Q channels.
With its fast and accurate settling (16ns to 0.1%), the CLC428 is also
a excellent choice for wide-dynamic range, anti-aliasing filters
to buffer the inputs of hi-resolution analog-to-digital converters.
Combining the CLC428’s two tightly-matched amplifiers in a single
eight-pin SOIC reduces cost and board space for many composite
amplifier applications such as active filters, differential line drivers/
receivers, fast peak detectors and instrumentation amplifiers.
To reduce design times and assist in board layout, the CLC428 is
supported by an evaluation board and a SPICE simulation model
available from National Semiconductor.
June 1999
Features
I
Wide unity-gain bandwidth: 160MHz
I
Ultra-low noise: 2.0nV/
√
Hz
I
Low distortion: -78dBc 2nd (2MHz)
-62/-72dBc (10MHz)
I
Settling time: 16ns to 0.1%
I
Supply voltage range: ±2.5 to ±5 or
single supply
I
High output current: ±80mA
Applications
I
General purpose dual op amp
I
Low noise integrators
I
Low noise active filters
I
Diff-in/diff-out instrumentation amp
I
Driver/receiver for transmission systems
I
High-speed detectors
I
I/Q channel amplifiers
C
D
Pinout
DIP & SOIC
1
2
3
4
8
7
6
5
V
out
1
V
inv
1
V
non-inv
1
-Vcc
+V
cc
V
out
2
V
inv
2
V
non-inv
2
-
+
-
+
Typical Application
5-Decade Integrator
1999 National Semiconductor
Corporation
Printed in the U.S.A.
http://www.national.com