NSC LM149J-883 Datasheet

LM148/LM248/LM348 Quad 741 Op Amps LM149 Wide Band Decompensated (A
General Description
The LM148 can be used anywhere multiple 741or1558type amplifiers are being used and in applications where amplifier matching or high packing density is required.
May 1999
=
V (MIN)
5)
Features
n 741 op amp operating characteristics n Low supply current drain: 0.6 mA/Amplifier n Class AB output stage —no crossover distortion n Pin compatible with the LM124 n Low input offset voltage: 1 mV n Low input offset current: 4 nA n Low input bias current: 30 nA n Gain bandwidth product
LM148 (unity gain): 1.0 MHz LM149 (A
n High degree of isolation between amplifiers: 120 dB n Overload protection for inputs and outputs
5): 4 MHz
V
LM148/LM149 Series Quad 741 Op Amp
Schematic Diagram
* 1 pF in the LM149
© 1999 National Semiconductor Corporation DS007786 www.national.com
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Absolute Maximum Ratings (Note 4)
If Military/Aerospace specified devices are required, please contact the National Semiconductor Sales Office/ Distributors for availability and specifications.
LM148/LM149 LM248 LM348
Supply Voltage Differential Input Voltage
±
22V
±
44V
±
18V
±
36V
±
18V
±
36V Output Short Circuit Duration (Note 1) Continuous Continuous Continuous Power Dissipation (P Thermal Resistance (θ
Molded DIP (N) P
Cavity DIP (J) P
Maximum Junction Temperature (T Operating Temperature Range −55˚C T
d
d
θ
jA
d
θ
JA
at 25˚C) and
), (Note 2)
jA
750 mW — 100˚C/W
1100 mW 800 mW 700 mW
110˚C/W 110˚C/W 110˚C/W
) 150˚C 110˚C 100˚C
jMAX
+125˚C −25˚C TA≤ +85˚C 0˚C TA≤ +70˚C
A
Storage Temperature Range −65˚C to +150˚C −65˚C to +150˚C −65˚C to +150˚C Lead Temperature (Soldering, 10 sec.) Ceramic 300˚C 300˚C 300˚C Lead Temperature (Soldering, 10 sec.) Plastic 260˚C Soldering Information
Dual-In-Line Package
Soldering (10 seconds) 260˚C 260˚C 260˚C
Small Outline Package
Vapor Phase (60 seconds) 215˚C 215˚C 215˚C
Infrared (15 seconds) 220˚C 220˚C 220˚C See AN-450 “Surface Mounting Methods and Their Effect on Product Reliability” for other methods of soldering surface mount devices.
ESD tolerance (Note 5) 500V 500V 500V
Electrical Characteristics
(Note 3)
Parameter Conditions LM148/LM149 LM248 LM348 Units
Min Typ Max Min Typ Max Min Typ Max
=
Input Offset Voltage T Input Offset Current T Input Bias Current T Input Resistance T Supply Current All Amplifiers T Large Signal Voltage Gain T
Amplifier to Amplifier T
25˚C, R
A
=
25˚C 4 25 4 50 4 50 nA
A
=
25˚C 30 100 30 200 30 200 nA
A
=
25˚C 0.8 2.5 0.8 2.5 0.8 2.5 M
A
=
25˚C, V
A
=
25˚C, V
A
V
OUT
=
25˚C, f=1Hzto20kHz
A
Coupling (Input Referred) See Crosstalk −120 −120 −120 dB
Test Circuit
Small Signal Bandwidth LM148 Series 1.0 1.0 1.0 MHz
=
T
25˚C
A
Phase Margin LM148 Series (A
=
T
25˚C
A
LM149 Series (A
Slew Rate LM148 Series (A
=
T
25˚C
A
LM149 Series (A Output Short Circuit Current T Input Offset Voltage R
=
25˚C 25 25 25 mA
A
10 k 6.0 7.5 7.5 mV
S
Input Offset Current 75 125 100 nA
10 k 1.0 5.0 1.0 6.0 1.0 6.0 mV
S
=
±
15V 2.4 3.6 2.4 4.5 2.4 4.5 mA
S
=
±
15V 50 160 25 160 25 160 V/mV
S
=
±
10V, RL≥ 2k
LM149 Series 4.0 4.0 4.0 MHz
=
1) 60 60 60 degrees
V
=
5) 60 60 60 degrees
V
=
1) 0.5 0.5 0.5 V/µs
V
=
5) 2.0 2.0 2.0 V/µs
V
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Electrical Characteristics (Continued)
(Note 3)
Parameter Conditions LM148/LM149 LM248 LM348 Units
Min Typ Max Min Typ Max Min Typ Max
Input Bias Current 325 500 400 nA Large Signal Voltage Gain V
Output Voltage Swing V
Input Voltage Range V Common-Mode Rejection R
=
±
15V, V
S
>
R
2k
L
=
±
15V, R
S
=
R
2k
L
=
±
15V
S
10 k 70 90 70 90 70 90 dB
S
=
±
10V, 25 15 15 V/mV
OUT
=
10 k
L
±12± ±10± ±
12
13 12
±12± ±10± ±
12
13 12
±12± ±10± ±
12 V
13 V 12 V
Ratio Supply Voltage Rejection R
Note 1: Any of the amplifier outputs can be shortedto ground indefinitely; however, more than one should not be simultaneously shorted as the maximum junction temperature will be exceeded.
Note 2: Themaximum power dissipation for these devices must be derated at elevated temperatures and is dicated by T The maximum available power dissipation at any temperature is P
Note 3: These specifications apply for V Note 4: Refer to RETS 148X for LM148 military specifications and refer to RETS 149X for LM149 military specifications. Note 5: Human body model, 1.5 kin series with 100 pF.
10 k,±5V VS≤±15V 77 96 77 96 77 96 dB
S
, θjA, and the ambient temperature, TA.
=
=
±
15V and over the absolute maximum operating temperature range (TL≤ TA≤ TH) unless otherwise noted.
S
d
(T
jMAX−TA
)/θjAor the 25˚C P
, whichever is less.
dMAX
jMAX
Cross Talk Test Circuit
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Application Hints
The LM148 series are quad low power 741 op amps. In the proliferation of quad op amps, these are the first to offer the convenience of familiar, easy to use operating characteris­tics of the 741 op amp. In those applications where 741 op amps have been employed, the LM148 series op amps can be employed directly with no change in circuit performance.
The package pin-outs are such that the inverting input of each amplifier is adjacent to its output. In addition, the ampli­fier outputs are located in the corners of the package which
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=
±
V
15V
S
simplifies PC board layout and minimizes package related capacitive coupling between amplifiers.
The input characteristics of these amplifiers allow differential input voltages which can exceed the supply voltages. In ad­dition, if either of the input voltages is within the operating common-mode range, the phase of the output remains cor­rect. If the negative limit of the operating common-mode range is exceeded at both inputs, the output voltage will be positive. For input voltages which greatly exceed the maxi­mum supply voltages, either differentially or common-mode, resistors should be placed in series with the inputs to limit the current.
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Application Hints (Continued)
Like the LM741, these amplifiers can easily drive a 100 pF capacitive load throughout the entire dynamic output voltage and current range. However, if very large capacitive loads must be driven by a non-inverting unity gain amplifier, a re­sistor should be placed between the output (and feedback connection) and the capacitance to reduce the phase shift resulting from the capacitive loading.
The output current of each amplifier in the package is limited. Short circuits from an output to either ground or the power supplies will not destroy the unit. However, if multiple output shorts occur simultaneously, the time duration should be short to prevent the unit from being destroyed as a result of excessive power dissipation in the IC chip.
As with most amplifiers, care should be taken lead dress, component placement and supply decoupling in order to en-
Typical Performance Characteristics
sure stability.For example, resistors from the output to an in­put should be placed with the body close to the input to mini­mize “pickup” and maximize the frequency of the feedback pole which capacitance from the input to ground creates.
A feedback pole is created when the feedback around any amplifier is resistive. The parallel resistance and capacitance from the input of the device (usually the inverting input) to AC ground set the frequency of the pole. In many instances the frequency of this pole is much greater than the expected 3 dB frequency of the closed loop gain and consequently there is negligible effect on stability margin. However, if the feed­back pole is less than approximately six times the expected 3 dB frequency a lead capacitor should be placed from the output to the input of the op amp. The value of the added ca­pacitor should be such that the RC time constant of this ca­pacitor and the resistance it parallels is greater than or equal to the original feedback pole time constant.
Supply Current
Positive Current Limit
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Input Bias Current
Negative Current Limit
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Voltage Swing
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Output Impedance
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Typical Performance Characteristics (Continued)
Common-Mode Rejection Ratio
Bode Plot LM149
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Open Loop Frequency Response
Large Signal Pulse Response (LM148)
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Bode Plot LM148
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Large Signal Pulse Response (LM149)
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Small Signal Pulse Response (LM148)
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Small Signal Pulse Response (LM149)
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Undistorted Output Voltage Swing
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Typical Performance Characteristics (Continued)
Gain Bandwidth
Inverting Large Signal Pulse Response (LM148)
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Slew Rate
Input Noise Voltage and Noise Current
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Inverting Large Signal Pulse Response (LM149)
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Positive Common-Mode Input Voltage Limit
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Negative Common-Mode Input Voltage Limit
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