Maximum Input Voltage Range before Output Clipping
Initial Input Bias Current
(3)
vs Temperature
Input Resistance
(3)
vs Temperature
Common-Mode Rejection Ratio
(4)
GAIN
(5)
Initial Gain
ISO130P/ISO130U
ISO130PB/ISO130UB
Gain vs Temperature
Gain vs V
S1
Gain vs V
S2
Gain Nonlinearity
for –200mV < V
IN
+ < 200mV
for –100mV < V
IN
+ < 100mV
vs Temperature
(6)
vs V
S1(6)
vs V
S2 (6)
OUTPUT
Voltage Range
High
Low
Common-Mode Voltage
Current Drive
(7)
Short-Circuit Current
Output Resistance
vs Temperature
FREQUENCY RESPONSE
Bandwidth
–3dB
–45°
Rise/Fall Time (10% - 90%)
Propagation Delay
to 10%
to 50%
to 90%
POWER SUPPLIES
Rated Voltage
Voltage Range
Quiescent Current
V
S1
V
S2
TEMPERATURE RANGE
Specification
Operating
Storage
θ
C–A
–200mV < V
IN
+ < 200mV
–200mV < V
IN
+ < 200mV
7.61
7.85
8.00
7.93
10
2.1
–0.6
0.2
0.1
–0.001
–0.005
–0.007
8.40
8.01
V/V
V/V
ppm/°C
ppm/mV
ppm/mV
%
%
% pts/°C
% pts/V
% pts/V
0.35
0.25
–200mV < V
IN
+ < 200mV
–200mV < V
IN
+ < 200mV
–200mV < V
IN
+ < 200mV
V
IN
+ = +500mV
V
IN
+ = –500mV
–40°C < T
A
< 85°C, 4.5V < V
S1
< 5.5V
V
OUT
= 0V or V
OUT
= V
S2
2.2
3.61
1.18
2.39
1
9.3
11
0.6
2.6
V
V
V
mA
mA
Ω
%/°C
–40°C to 85°C
–40°C to 85°C
–40°C to 85°C
–40°C to 85°C
–40°C to 85°C
50
85
35
4.3
2.0
3.4
6.3
5.0
6.6
3.3
5.6
9.9
kHz
kHz
µs
µs
µs
µs
V
V
mA
mA
°C
°C
°C
°C/W
4.5
V
IN
+ = 200mV, –40°C < T
A
< 85°C, 4.5V < V
S1
< 5.5V
–40°C < T
A
< 85°C, 4.5V < V
S1
< 5.5V
–40
–40
–55
86
10.7
11.6
5.5
15.5
15.5
85
100
125
NOTES: (1) This part may also be used in Pollution Degree 3 environments where the rated mains voltage is 300Vrms (per DIN VDE0109/12.83). (2) IMRR
= 20 log (∂V
IN
/∂V
ISO
). (3) Time averaged value. (4) V
IN
+ = V
IN
– = V
CM
. CMRR = 20 log (∂V
CM
/∂V
OS
). (5) The slope of the best-fit line of (V
OUT+
– V
OUT–
) vs
(V
IN+
–V
IN–
). (6) Change in nonlinearity vs temperature or supply voltage expressed in number of percentage points per
°C
or volt. (7) For best offset voltage
performance. (8) For devices with minimum V
ISO
specified at 3750Vrms, each isolation amplifier is proof-tested by applying an insulation test voltage
≥
4500Vrms for 1 second (leakage current < 5µA). This specification does not guarantee continuous operation. (9) Pins 1-4 are shorted together and pins 5-
8 are shorted together for this test.
®
3
ISO130
PIN CONFIGURATION
Top View
8-Pin DIP/SOIC
ABSOLUTE MAXIMUM RATINGS
Supply Voltages: V
S1
, V
S2
......................................................... 0V to 5.5V
Steady-State Input Voltage .......................................... –2V to V
S1
+ 0.5V
2 Second Transient Input Voltage ................................................... –6.0V
Output Voltages: V
OUT
+, V
OUT
– ................................... –0.5V to V
S2
+ 0.5V
Lead Temperature Solder (1.6mm below seating plane, 10s) ....... 260°C
V
S1
V
IN
+
V
IN
–
GND
1
1
2
3
4
8
7
6
5
V
S2
V
OUT
+
V
OUT
–
GND
2
PACKAGE INFORMATION
(1)
MODEL
ISO130P
ISO130PB
ISO130U
ISO130UB
PACKAGE
8-Pin Plastic DIP
8-Pin Plastic DIP
8-Pin Gull-Wing Plastic Surface Mount
8-Pin Gull-Wing Plastic Surface Mount
PACKAGE DRAWING
NUMBER
006-3
006-3
006-2
006-2
ELECTROSTATIC
DISCHARGE SENSITIVITY
This integrated circuit can be damaged by ESD. Burr-Brown
recommends that all integrated circuits be handled with ap-
propriate precautions. Failure to observe proper handling and
installation procedures can cause damage.
ESD damage can range from subtle performance degradation
to complete device failure. Precision integrated circuits may
be more susceptible to damage because very small parametric
changes could cause the device not to meet its published
specifications.
NOTE: (1) For detailed drawing and dimension table, please see end of data
sheet, or Appendix D of Burr-Brown IC Data Book.
ORDERING INFORMATION
MODEL
ISO130P
ISO130PB
ISO130U
ISO130UB
PACKAGE
8-Pin Plastic DIP
8-Pin Plastic DIP
8-Pin Gull-Wing Plastic Surface Mount
8-Pin Gull-Wing Plastic Surface Mount
GAIN ERROR
(MAX)
±5%
(mean value = 8.00)
±1%
(mean value = 7.93)
±5%
(mean value = 8.00)
±1%
(mean value = 7.93)
The information provided herein is believed to be reliable; however, BURR-BROWN assumes no responsibility for inaccuracies or omissions. BURR-BROWN assumes
no responsibility for the use of this information, and all use of such information shall be entirely at the user’s own risk. Prices and specifications are subject to change
without notice. No patent rights or licenses to any of the circuits described herein are implied or granted to any third party. BURR-BROWN does not authorize or warrant
any BURR-BROWN product for use in life support devices and/or systems.