LM224AN STMicroelectronics, LM224AN Datasheet - Page 13

IC OP AMP LP QUAD 14-DIP

LM224AN

Manufacturer Part Number
LM224AN
Description
IC OP AMP LP QUAD 14-DIP
Manufacturer
STMicroelectronics
Datasheets

Specifications of LM224AN

Amplifier Type
General Purpose
Number Of Circuits
4
Slew Rate
0.4 V/µs
Gain Bandwidth Product
1.3MHz
Current - Input Bias
20nA
Voltage - Input Offset
2000µV
Current - Supply
1.5mA
Current - Output / Channel
70mA
Voltage - Supply, Single/dual (±)
3 V ~ 30 V, ±1.5 V ~ 15 V
Operating Temperature
-40°C ~ 105°C
Mounting Type
Through Hole
Package / Case
14-DIP (0.300", 7.62mm)
Number Of Channels
4
Common Mode Rejection Ratio (min)
70 dB
Input Offset Voltage
3 mV
Input Bias Current (max)
100 nA
Operating Supply Voltage
5 V, 9 V, 12 V, 15 V
Supply Current
1.2 mA
Maximum Power Dissipation
500 mW
Maximum Operating Temperature
+ 105 C
Minimum Operating Temperature
- 40 C
Dual Supply Voltage
+/- 3 V, +/- 5 V, +/- 9 V, +/- 12 V
Maximum Dual Supply Voltage
+/- 15 V
Minimum Dual Supply Voltage
+/- 1.5 V
Mounting Style
Through Hole
Shutdown
No
Supply Voltage (max)
30 V
Supply Voltage (min)
3 V
Technology
Bipolar
Voltage Gain Db
100 dB
Bandwidth
1.3 MHz
Channel Separation
120
Common Mode Rejection Ratio
80
Current, Input Bias
20 nA
Current, Input Offset
2 nA
Current, Output
40 mA
Current, Supply
1.5 mA
Harmonic Distortion
0.015 %
Number Of Amplifiers
Quad
Package Type
DIP-14
Power Dissipation
500 mW
Signal Gain
100 V/mV
Temperature, Operating, Range
-40 to +105 °C
Voltage, Input
-0.3 to 30.3 V
Voltage, Noise
40 nV/sqrt Hz
Voltage, Offset
2 mV
Voltage, Output, High
28 V
Voltage, Output, Low
5 mV
Voltage, Supply
3 to 30 V
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Output Type
-
-3db Bandwidth
-
Lead Free Status / Rohs Status
Lead free / RoHS Compliant
Other names
497-1546-5

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
LM224AN
Manufacturer:
ST
Quantity:
20 000
LM224A-LM324A
5
Note:
Macromodels
Please consider the following before using this macromodel:
All models are a trade-off between accuracy and complexity (i.e. simulation time).
Macromodels are not a substitute to breadboarding; rather, they confirm the validity of a
design approach and help to select surrounding component values.
A macromodel emulates the nominal performance of a typical device within specified
operating conditions (i.e. temperature, supply voltage, etc.). Thus the macromodel is often
not as exhaustive as the datasheet, its purpose is to illustrate the main parameters of the
product.
Data issued from macromodels that is used outside of the specified conditions (V
temperature, etc.) or even worse, outside of the device operating conditions (V
is not reliable in any way.
** Standard Linear Ics Macromodels, 1993.
** CONNECTIONS :
* 1 INVERTING INPUT
* 2 NON-INVERTING INPUT
* 3 OUTPUT
* 4 POSITIVE POWER SUPPLY
* 5 NEGATIVE POWER SUPPLY
.SUBCKT LM124 1 3 2 4 5
*******************************************************
.MODEL MDTH D IS=1E-8 KF=3.104131E-15 CJO=10F
* INPUT STAGE
CIP 2 5 1.000000E-12
CIN 1 5 1.000000E-12
EIP 10 5 2 5 1
EIN 16 5 1 5 1
RIP 10 11 2.600000E+01
RIN 15 16 2.600000E+01
RIS 11 15 2.003862E+02
DIP 11 12 MDTH 400E-12
DIN 15 14 MDTH 400E-12
VOFP 12 13 DC 0
VOFN 13 14 DC 0
IPOL 13 5 1.000000E-05
CPS 11 15 3.783376E-09
DINN 17 13 MDTH 400E-12
VIN 17 5 0.000000e+00
DINR 15 18 MDTH 400E-12
VIP 4 18 2.000000E+00
FCP 4 5 VOFP 3.400000E+01
FCN 5 4 VOFN 3.400000E+01
FIBP 2 5 VOFN 2.000000E-03
FIBN 5 1 VOFP 2.000000E-03
* AMPLIFYING STAGE
Macromodels
CC
, V
CC
icm
,
, etc.)
13/20

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