NE592
Video Amplifier
The NE592 is a monolithic, two-stage, differential output,
wideband video amplifier. It offers fixed gains of 100 and 400
without external components and adjustable gains from 400 to 0 with
one external resistor. The input stage has been designed so that with
the addition of a few external reactive elements between the gain
select terminals, the circuit can function as a high-pass, low-pass, or
band-pass filter. This feature makes the circuit ideal for use as a
video or pulse amplifier in communications, magnetic memories,
display, video recorder systems, and floppy disk head amplifiers.
Now available in an 8-pin version with fixed gain of 400 without
external components and adjustable gain from 400 to 0 with one
external resistor.
Features
www.onsemi.com
MARKING
DIAGRAMS
8
1
SOIC−8
D SUFFIX
CASE 751
1
NE592
ALYW
G
•
•
•
•
•
•
•
•
•
•
•
•
120 MHz Unity Gain Bandwidth
Adjustable Gains from 0 to 400
Adjustable Pass Band
No Frequency Compensation Required
Wave Shaping with Minimal External Components
MIL-STD Processing Available
These Devices are Pb−Free and are RoHS Compliant
14
1
SOIC−14
D SUFFIX
CASE 751A
1
A
L, WL
Y
W, WW
G
or G
= Assembly Location
= Wafer Lot
= Year
= Work Week
= Pb−Free Package
NE592D14G
AWLYWW
Applications
Floppy Disk Head Amplifier
Video Amplifier
Pulse Amplifier in Communications
Magnetic Memory
Video Recorder Systems
+V
R1
R2
R8
R10
R9
Q6
Q5
Q4
Q3
R11
OUTPUT 1
ORDERING INFORMATION
See detailed ordering and shipping information in the package
dimensions section on page 8 of this data sheet.
INPUT 1
Q1
G1A
R3
G2A
Q2
INPUT 2
G1B
R5
G2B
R12
OUTPUT 2
Q7B
Q7A
R7A
R7B
Q8
Q9
Q10
Q11
R15
R16
R13
R14
‐V
Figure 1. Block Diagram
©
Semiconductor Components Industries, LLC, 2016
1
March, 2016 − Rev. 5
Publication Order Number:
NE592/D
NE592
PIN CONNECTIONS
SOIC-14
INPUT 2
NC
G
2B
GAIN SELECT
G
1B
GAIN SELECT
V‐
NC
OUTPUT 2
1
2
3
4
5
6
7
14
13
12
11
10
9
8
INPUT 1
NC
G
2A
GAIN SELECT
G
1A
GAIN SELECT
V+
NC
OUTPUT 1
INPUT 2
G
1B
GAIN SELECT
1
2
SOIC-8
8
7
6
5
INPUT 1
G
1A
GAIN SELECT
V+
OUTPUT 1
V‐ 3
OUTPUT 2
4
(Top View)
(Top View)
MAXIMUM RATINGS
(T
A
= +25°C, unless otherwise noted.)
Rating
Supply Voltage
Differential Input Voltage
Common-Mode Input Voltage
Output Current
Operating Ambient Temperature Range
Operating Junction Temperature
Storage Temperature Range
Maximum Power Dissipation, T
A
= 25°C (Still Air) (Note 1)
SOIC-14 Package
SOIC-8 Package
Thermal Resistance, Junction−to−Ambient
SOIC-14 Package
SOIC-8 Package
R
qJA
Symbol
V
CC
V
IN
V
CM
I
OUT
T
A
T
J
T
STG
P
D MAX
0.98
0.79
°C/W
145
182
Value
"8.0
"5.0
"6.0
10
0 to +70
150
65 to +150
Unit
V
V
V
mA
°C
°C
°C
W
Stresses exceeding those listed in the Maximum Ratings table may damage the device. If any of these limits are exceeded, device functionality
should not be assumed, damage may occur and reliability may be affected.
1. Derate above 25°C at the following rates:
SOIC-14 package at 6.9 mW/°C
SOIC-8 package at 5.5 mW/°C
www.onsemi.com
2
NE592
DC ELECTRICAL CHARACTERISTICS
(V
SS
=
"6.0
V, V
CM
= 0, typicals at T
A
= +25°C, min and max at 0°C
v
T
A
v
70°C, unless
Characteristic
Differential Voltage Gain
Gain 1 (Note 2)
Gain 2 (Notes 3 and 4)
Input Resistance
Gain 1 (Note 2)
Gain 2 (Notes 3 and 4)
Input Capacitance
Input Offset Current
Input Bias Current
Input Noise Voltage
Input Voltage Range
Common-Mode Rejection Ratio
Gain 2 (Note 4)
Test Conditions
R
L
= 2.0 kW, V
OUT
= 3.0 V
P-P
R
IN
−
T
A
= 25°C
0°C
v
T
A
v
70°C
Gain 2 (Note 4)
T
A
= 25°C
0°C
v
T
A
v
70°C
T
A
= 25°C
0°C
v
T
A
v
70°C
BW 1.0 kHz to 10 MHz
−
V
CM
"1.0
V, f < 100 kHz, T
A
= 25°C
V
CM
"1.0
V, f < 100 kHz,
0°C
v
T
A
v
70°C
V
CM
"1.0
V, f < 5.0 MHz
DV
S
=
"0.5
V
C
IN
I
OS
I
BIAS
V
NOISE
V
IN
CMRR
−
10
8.0
−
−
−
−
−
−
"1.0
60
50
−
PSRR
V
OS
−
−
−
−
V
CM
V
OUT
R
OUT
I
CC
2.4
3.0
2.8
−
−
−
−
−
0.35
−
2.9
4.0
−
20
18
−
1.5
1.5
0.75
1.0
3.4
−
−
−
24
27
V
V
W
mA
50
4.0
30
−
2.0
0.4
−
9.0
−
12
−
86
−
60
70
−
−
−
−
5.0
6.0
30
40
−
−
−
−
−
−
dB
V
pF
mA
mA
mV
RMS
V
dB
Symbol
A
VOL
250
80
400
100
600
120
kW
Min
Typ
Max
Unit
V/V
otherwise noted. Recommended operating supply voltages V
S
=
"6.0
V.)
Supply Voltage Rejection Ratio
Gain 2 (Note 4)
Output Offset Voltage
Gain 1
Gain 2 (Note 4)
Gain 3 (Note 5)
Gain 3 (Note 5)
Output Common-Mode Voltage
Output Voltage Swing Differential
Output Resistance
Power Supply Current
R
L
=
R
R
L
=
R
R
L
=
R,
T
A
= 25°C
R
L
=
R,
0°C
v
T
A
v
70°C
R
L
=
R,
T
A
= 25°C
R
L
= 2.0 kW, T
A
= 25°C
R
L
= 2.0 kW, 0°C
v
T
A
v
70°C
−
R
L
=
R,
T
A
= 25°C
R
L
=
R,
0°C
v
T
A
v
70°C
Product parametric performance is indicated in the Electrical Characteristics for the listed test conditions, unless otherwise noted. Product
performance may not be indicated by the Electrical Characteristics if operated under different conditions.
supply voltages V
S
=
"6.0
V.)
Characteristic
Bandwidth
Gain 1 (Note 2)
Gain 2 (Notes 3 and 4)
Rise Time
Gain 1 (Note 2)
Gain 2 (Notes 3 and 4)
Propagation Delay
Gain 1 (Note 2)
Gain 2 (Notes 3 and 4)
2.
3.
4.
5.
AC ELECTRICAL CHARACTERISTICS
(T
A
= +25°C V
SS
=
"6.0
V, V
CM
= 0, unless otherwise noted. Recommended operating
Test Conditions
−
Symbol
BW
Min
−
−
Typ
40
90
10.5
4.5
7.5
6.0
Max
−
−
Unit
MHz
t
R
V
OUT
= 1.0 V
P−P
t
PD
V
OUT
= 1.0 V
P−P
−
−
10
−
−
−
12
−
ns
ns
Gain select Pins G
1A
and G
1B
connected together.
Gain select Pins G
2A
and G
2B
connected together.
Applies to 14-pin version only.
All gain select pins open.
www.onsemi.com
3
NE592
TYPICAL PERFORMANCE CHARACTERISTICS
COMMON-MODE REJECTION RATIO − dB
100
OUTPUT VOLTAGE SWING − Vpp
90
80
70
60
50
40
30
20
10
0
10k
100k
1M
10M
100M
GAIN 2
V
S
= +6V
T
A
= 25
o
C
7.0
6.0
5.0
4.0
3.0
2.0
1.0
0
1
5 10
50 100
500 1000
FREQUENCY − Hz
FREQUENCY − MHz
V
S
= +6V
T
A
= 25
o
C
R
L
= 1kW
1.6
1.4
1.2
1.0
0.8
0.6
0.4
0.2
0
-0.2
-0.4
-15 -10 -5
0
5
10 15 20 25 30 35
GAIN 2
GAIN 1
V
S
= +6V
T
A
= 25
o
C
R
L
= 1k
TIME − ns
Figure 2. Common−Mode
Rejection Ratio as a Function
of Frequency
Figure 3. Output Voltage Swing
as a Function of Frequency
Figure 4. Pulse Response
28
T
A
= 25
o
C
SUPPLY CURRENT − mA
24
OUTPUT VOLTAGE − V
1.6
1.4
1.2
1.0
0.8
0.6
0.4
0.2
0
-0.2
V
S
= +6V
V
S
= +3V
GAIN 2
T
A
= 25
o
C
R
L
= 1kW
1.6
1.4
OUTPUT VOLTAGE − V
V
S
= +8V
1.2
1.0
0.8
0.6
0.4
0.2
0
-0.2
-0.4
0
5 10 15 20 25 30 35
TIME − ns
-15 -10 -5
0
5
10 15 20 25 30 35
TIME − ns
T
amb
= 0
o
C
T
A
= 25
o
C
T
A
= 70
o
C
GAIN 2
V
S
= +
6V
R
L
= 1kW
20
16
12
8
3
4
5
6
7
8
SUPPLY VOLTAGE − +V
-0.4
-15 -10 -5
Figure 5. Supply Current as
a Function of Temperature
Figure 6. Pulse Response as
a Function of Supply Voltage
Figure 7. Pulse Response as
a Function of Temperature
SINGLE ENDED VOLTAGE GAIN − dB
1.10
1.08
RELATIVE VOLTAGE GAIN
1.06
1.04
1.02
1.00
0.98
0.96
0.94
0.92
0.90
0
10
20
30
40
50
60
70
TEMPERATURE −
o
C
GAIN 1
GAIN 2
V
S
= +
6V
60
RELATIVE VOLTAGE GAIN
50
40
30
20
10
0
-10
1
5 10
50 100
500 1000
FREQUENCY − MHz
T
A
= −55
o
C
T
A
= 25
o
C
T
A
= 125
o
C
GAIN 2
V
S
= +
6V
R
L
= 1kW
1.4
1.3
1.2
1.1
1.0
0.9
0.8
0.7
0.6
0.5
0.4
3
4
5
6
7
8
SUPPLY VOLTAGE − +V
GAIN 1
GAIN 2
T
amb
= 25
o
C
Figure 8. Voltage Gain as a
Function of Temperature
Figure 9. Gain vs. Frequency
as a Function of Temperature
Figure 10. Voltage Gain as a
Function of Supply Voltage
www.onsemi.com
4
NE592
TYPICAL PERFORMANCE CHARACTERISTICS
60
DIFFERENTIAL VOLTAGE GAIN − V/V
50
40
30
20
10
0
-10
1
5
10
50 100
500 1000
FREQUENCY − MHz
V
S
= +6V
V
S
= +3V
V
S
= +8V
51W
51W
R
ADJ
1kW
1kW
GAIN 2
T
A
= 25
o
C
R
L
= 1kW
0.2mF
14
1
12
11
8
7
0.2mF
1000
V
S
= +6V
f = 100kHz
T
A
= 25
o
C
FIGURE 2
SINGLE ENDED VOLTAGE GAIN − dB
100
592
3
4
10
1
.1
V
S
= +6V T
A
= 25
o
C
.01
1
10
100
1K
10K 100K
1M
R
ADJ
−
W
Figure 11. Gain vs. Frequency
as a Function of Supply Voltage
Figure 12. Voltage Gain Adjust
Circuit
Figure 13. Voltage Gain as a
Function of RADJ (Figure 2)
OVERDRIVE RECOVERY TIME − ns
21
20
19
18
17
16
15
14
-60
-20
20
60
100
140
TEMPERATURE −
o
C
V
S
= +6V
70
60
50
40
30
20
10
0
0
20 40 60 80 100 120 140 160 180 200
DIFFERENTIAL INPUT VOLTAGE − mV
OUTPUT VOLTAGE SWING − V OR
OUTPUT SINK CURRENT − mA
V
S
= +6V
T
A
= 25
o
C
GAIN 2
7.0
6.0
5.0
VOLTAGE
4.0
3.0
2.0
1.0
0
3.0
4.0
5.0
6.0
7.0
SUPPLY VOLTAGE − +V
8.0
CURRENT
T
A
= 25
o
C
SUPPLY CURRENT − mA
Figure 14. Supply Current as a
Function of Temperature
Figure 15. Differential Overdrive
Recovery Time
Figure 16. Output Voltage and
Current Swing as a Function of
Supply Voltage
7.0
OUTPUT VOLTAGE SWING − Vpp
6.0
5.0
4.0
3.0
2.0
1.0
0
10
50 100
500 1K
LOAD RESISTANCE −
W
5K 10K
V
S
= +6V
T
A
= 25
o
C
70
INPUT RESISTANCE − K
Ω
60
50
40
30
20
10
0
-60
-20 0 20
60
100
TEMPERATURE −
o
C
140
INPUT NOISE VOLTAGE −
μ
Vrms
GAIN 2
V
S
= +6V
100
90
80
70
60
50
40
30
20
10
0
1
10
100
1K
SOURCE RESISTANCE −
W
10K
GAIN 2
V
S
= +6V
T
A
= 25
o
C
BW = 10MHz
Figure 17. Output Voltage
Swing as a Function of Load
Resistance
Figure 18. Input Resistance as a
Function of Temperature
Figure 19. Input Noise Voltage
as a Function of Source
Resistance
www.onsemi.com
5