LM358, LM258, LM2904,
LM2904A, LM2904V,
NCV2904
Single Supply Dual
Operational Amplifiers
Utilizing the circuit designs perfected for Quad Operational
Amplifiers, these dual operational amplifiers feature low power drain,
a common mode input voltage range extending to ground/V
EE
, and
single supply or split supply operation. The LM358 series is
equivalent to one–half of an LM324.
These amplifiers have several distinct advantages over standard
operational amplifier types in single supply applications. They can
operate at supply voltages as low as 3.0 V or as high as 32 V, with
quiescent currents about one–fifth of those associated with the
MC1741 (on a per amplifier basis). The common mode input range
includes the negative supply, thereby eliminating the necessity for
external biasing components in many applications. The output voltage
range also includes the negative power supply voltage.
•
Short Circuit Protected Outputs
•
True Differential Input Stage
•
Single Supply Operation: 3.0 V to 32 V (LM258/LM358)
3.0 V to 26 V (LM2904, A, V)
•
Low Input Bias Currents
•
Internally Compensated
•
Common Mode Range Extends to Negative Supply
•
Single and Split Supply Operation
•
ESD Clamps on the Inputs Increase Ruggedness of the Device
without Affecting Operation
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PDIP–8
N, AN, VN SUFFIX
CASE 626
1
8
8
1
SO–8
D, VD SUFFIX
CASE 751
8
1
Micro8t
DMR2 SUFFIX
CASE 846A
PIN CONNECTIONS
Output A
Inputs A
V
EE
/Gnd
1
2
3
4
8
–
+
7
V
CC
Output B
Inputs B
–
+
5
6
(Top View)
ORDERING INFORMATION
See detailed ordering and shipping information in the package
dimensions section on page 10 of this data sheet.
DEVICE MARKING INFORMATION
See general marking information in the device marking
section on page 11 of this data sheet.
©
Semiconductor Components Industries, LLC, 2002
1
August, 2002 – Rev. 11
Publication Order Number:
LM358/D
LM358, LM258, LM2904, LM2904A, LM2904V, NCV2904
3.0 V to V
CC(max)
V
CC
1
2
V
EE
/Gnd
V
EE
V
CC
1
2
1.5 V to V
EE(max)
1.5 V to V
CC(max)
Single Supply
Figure 1.
Split Supplies
Output
Q15
Q16
Q14
Q13
Q19
5.0 pF
Q12
25
Q18
Inputs
Q17
Q2
Q3
Q4
Q21
Q5
Q6
Q26
Q7
Q8
Q10
Q1
2.0 k
Q9
Q20
Q11
40 k
Bias Circuitry
Common to Both
Amplifiers
V
CC
Q22
Q24
Q23
Q25
2.4 k
V
EE
/Gnd
Figure 2. Representative Schematic Diagram
(One–Half of Circuit Shown)
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2
LM358, LM258, LM2904, LM2904A, LM2904V, NCV2904
MAXIMUM RATINGS
(T
A
= +25°C, unless otherwise noted.)
Rating
Power Supply Voltages
Single Supply
Split Supplies
Input Differential Voltage Range (Note 1)
Input Common Mode Voltage Range (Note 2)
Output Short Circuit Duration
Junction Temperature
Thermal Resistance, Junction–to–Air (Note 3)
Storage Temperature Range
ESD Tolerance – Human Body Model (Note 4)
Operating Ambient Temperature Range
LM258
LM358
LM2904/LM2904A
LM2904V, NCV2904 (Note 5)
Symbol
V
CC
V
CC
, V
EE
V
IDR
V
ICR
t
SC
T
J
R
qJA
T
stg
–
T
A
–25 to +85
0 to +70
–
–
–
–
–40 to +105
–40 to +125
LM258
LM358
32
±16
±32
–0.3 to 32
LM2904, LM2904A
LM2904V, NCV2904
26
±13
±26
–0.3 to 26
Continuous
150
238
–55 to +125
2000
°C
°C/W
°C
V
°C
Vdc
Vdc
Unit
Vdc
1. Split Power Supplies.
2. For Supply Voltages less than 32 V for the LM258/358 and 26 V for the LM2904, A, V, the absolute maximum input voltage is equal to the
supply voltage.
3. R
qJA
for Case 846A.
4. ESD data available upon request.
5.
NCV2904 is qualified for automotive use.
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3
LM358, LM258, LM2904, LM2904A, LM2904V, NCV2904
ELECTRICAL CHARACTERISTICS
(V
CC
= 5.0 V, V
EE
= Gnd, T
A
= 25°C, unless otherwise noted.)
LM258
Characteristic
Input Offset Voltage
V
CC
= 5.0 V to 30 V (26 V for LM2904, V),
V
IC
= 0 V to V
CC
–1.7 V, V
O
]
1.4 V, R
S
= 0
Ω
T
A
= 25°C
T
A
= T
high
(Note 6)
T
A
= T
low
(Note 6)
Average Temperature Coefficient of Input Offset
Voltage
T
A
= T
high
to T
low
(Note 6)
Input Offset Current
T
A
= T
high
to T
low
(Note 6)
Input Bias Current
T
A
= T
high
to T
low
(Note 6)
Average Temperature Coefficient of Input Offset
Current
T
A
= T
high
to T
low
(Note 6)
Input Common Mode Voltage Range (Note 7),
V
CC
= 30 V
(26 V for LM2904, V)
V
CC
= 30 V (26 V for LM2904, V),
T
A
= T
high
to T
low
Differential Input Voltage Range
Large Signal Open Loop Voltage Gain
R
L
= 2.0 kΩ, V
CC
= 15 V, For Large V
O
Swing,
T
A
= T
high
to T
low
(Note 6)
Channel Separation
1.0 kHz
≤
f
≤
20 kHz, Input Referenced
Common Mode Rejection
R
S
≤
10 kΩ
Power Supply Rejection
Output Voltage–High Limit
T
A
= T
high
to T
low
(Note 6)
V
CC
= 5.0 V, R
L
= 2.0 kΩ, T
A
= 25°C
V
CC
= 30 V (26 V for LM2904, V), R
L
= 2.0 kΩ
V
CC
= 30 V (26 V for LM2904, V), R
L
= 10 kΩ
Output Voltage–Low Limit
V
CC
= 5.0 V, R
L
= 10 kΩ,
T
A
= T
high
to T
low
(Note 6)
Output Source Current
V
ID
= +1.0 V, V
CC
= 15 V
Output Sink Current
V
ID
= –1.0 V, V
CC
= 15 V
V
ID
= –1.0 V, V
O
= 200 mV
Output Short Circuit to Ground (Note 8)
Power Supply Current (Total Device)
T
A
= T
high
to T
low
(Note 6)
V
CC
= 30 V (26 V for LM2904, V), V
O
= 0 V, R
L
=
∞
V
CC
= 5 V, V
O
= 0 V, R
L
=
∞
Symbol
V
IO
Min
Typ
Max
Min
LM358
Typ
Max
Unit
mV
–
–
–
∆V
IO
/∆T
–
2.0
–
–
7.0
5.0
7.0
7.0
–
–
–
–
–
2.0
–
–
7.0
7.0
9.0
9.0
–
µV/°C
I
IO
I
IB
∆I
IO
/∆T
–
–
–
–
–
3.0
–
–45
–50
10
30
100
–150
–300
–
–
–
–
–
–
5.0
–
–45
–50
10
50
150
–250
–500
–
nA
pA/°C
V
ICR
0
–
28.3
0
–
28.3
V
0
V
IDR
A
VOL
50
25
CS
CMR
–
–
100
–
–120
85
28
V
CC
–
–
–
–
0
–
25
15
–
65
–
–
100
–
–120
70
28
V
CC
–
–
–
–
–
V
V/mV
–
70
dB
dB
PSR
V
OH
65
100
–
65
100
–
dB
V
3.3
26
27
V
OL
–
3.5
–
28
5.0
–
–
–
20
3.3
26
27
–
3.5
–
28
5.0
–
–
–
20
mV
I
O +
I
O –
20
40
–
20
40
–
mA
10
12
I
SC
I
CC
–
–
–
20
50
40
–
–
60
10
12
–
20
50
40
–
–
60
mA
µA
mA
mA
1.5
0.7
3.0
1.2
–
–
1.5
0.7
3.0
1.2
6. LM258: T
low
= –25°C, T
high
= +85°C
LM358: T
low
= 0°C, T
high
= +70°C
LM2904V & NCV2904: T
low
= –40°C, T
high
= +125°C
LM2904/LM2904A: T
low
= –40°C, T
high
= +105°C
NCV2904 is qualified for automotive use.
7. The input common mode voltage or either input signal voltage should not be allowed to go negative by more than 0.3 V. The upper end of
the common mode voltage range is V
CC
–1.7 V.
8. Short circuits from the output to V
CC
can cause excessive heating and eventual destruction. Destructive dissipation can result from
simultaneous shorts on all amplifiers.
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4
LM358, LM258, LM2904, LM2904A, LM2904V, NCV2904
ELECTRICAL CHARACTERISTICS
(V
CC
= 5.0 V, V
EE
= Gnd, T
A
= 25°C, unless otherwise noted.)
LM2904
Characteristic
Input Offset Voltage
V
CC
= 5.0 V to 30 V (26 V for LM2904, V),
V
IC
= 0 V to V
CC
–1.7 V, V
O
]
1.4 V, R
S
= 0
Ω
T
A
= 25°C
T
A
= T
high
(Note 9)
T
A
= T
low
(Note 9)
Average Temperature Coefficient of Input Offset
Voltage
T
A
= T
high
to T
low
(Note 9)
Input Offset Current
T
A
= T
high
to T
low
(Note 9)
Input Bias Current
T
A
= T
high
to T
low
(Note 9)
Average Temperature Coefficient of Input Offset
Current
T
A
= T
high
to T
low
(Note 9)
Input Common Mode Voltage Range (Note 10),
V
CC
= 30 V (26 V for LM2904, V)
V
CC
= 30 V (26 V for LM2904, V),
T
A
= T
high
to T
low
Differential Input Voltage Range
Large Signal Open Loop Voltage Gain
R
L
= 2.0 kΩ, V
CC
= 15 V, For Large V
O
Swing,
T
A
= T
high
to T
low
(Note 9)
Channel Separation
1.0 kHz
≤
f
≤
20 kHz, Input Referenced
Common Mode Rejection
R
S
≤
10 kΩ
Power Supply Rejection
Output Voltage–High Limit
T
A
= T
high
to T
low
(Note 9)
V
CC
= 5.0 V, R
L
= 2.0 kΩ, T
A
= 25°C
V
CC
= 30 V (26 V for LM2904, V), R
L
= 2.0 kΩ
V
CC
= 30 V (26 V for LM2904, V), R
L
= 10 kΩ
Output Voltage–Low Limit
V
CC
= 5.0 V, R
L
= 10 kΩ,
T
A
= T
high
to T
low
(Note 9)
Output Source Current
V
ID
= +1.0 V, V
CC
= 15 V
Output Sink Current
V
ID
= –1.0 V, V
CC
= 15 V
V
ID
= –1.0 V, V
O
= 200 mV
Output Short Circuit to Ground (Note 11)
Power Supply Current (Total Device)
T
A
= T
high
to T
low
(Note 9)
V
CC
= 30 V (26 V for LM2904, V), V
O
= 0 V,
R
L
=
∞
V
CC
= 5 V, V
O
= 0 V, R
L
=
∞
Symbol
V
IO
Min
Typ
Max
Min
LM2904A
Typ
Max
LM2904V, NCV2904
Min
Typ
Max
Unit
mV
–
–
–
∆V
IO
/∆T
–
2.0
–
–
7.0
7.0
10
10
–
–
–
–
–
2.0
–
–
7.0
7.0
10
10
–
–
–
–
–
–
–
–
7.0
7.0
13
10
–
µV/°C
I
IO
I
IB
∆I
IO
/∆T
–
–
–
–
–
5.0
45
–45
–50
10
50
200
–250
–500
–
–
–
–
–
–
5.0
45
–45
–50
10
50
200
–100
–250
–
–
–
–
–
–
5.0
45
–45
–50
10
50
200
–250
–500
–
nA
pA/°C
V
ICR
0
0
–
–
–
100
–
–120
70
24.3
24
V
CC
–
–
–
–
0
0
–
25
15
–
50
–
–
–
100
–
–120
70
24.3
24
V
CC
–
–
–
–
0
0
–
25
15
–
50
–
–
–
100
–
–120
70
24.3
24
V
CC
–
–
–
–
V
V
IDR
A
VOL
–
25
15
V
V/mV
CS
CMR
–
50
dB
dB
PSR
V
OH
50
100
–
50
100
–
50
100
–
dB
V
3.3
22
23
V
OL
–
3.5
–
24
5.0
–
–
–
20
3.3
22
23
–
3.5
–
24
5.0
–
–
–
20
3.3
22
23
–
3.5
–
24
5.0
–
–
–
20
mV
I
O +
I
O –
20
40
–
20
40
–
20
40
–
mA
10
–
I
SC
I
CC
–
–
–
20
–
40
–
–
60
10
–
–
20
–
40
–
–
60
10
–
–
20
–
40
–
–
60
mA
µA
mA
mA
1.5
0.7
3.0
1.2
–
–
1.5
0.7
3.0
1.2
–
–
1.5
0.7
3.0
1.2
9. LM258: T
low
= –25°C, T
high
= +85°C
LM358: T
low
= 0°C, T
high
= +70°C
LM2904V & NCV2904: T
low
= –40°C, T
high
= +125°C
LM2904/LM2904A: T
low
= –40°C, T
high
= +105°C
NCV2904 is qualified for automotive use.
10. The input common mode voltage or either input signal voltage should not be allowed to go negative by more than 0.3 V. The upper end of
the common mode voltage range is V
CC
–1.7 V.
11. Short circuits from the output to V
CC
can cause excessive heating and eventual destruction. Destructive dissipation can result from
simultaneous shorts on all amplifiers.
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5