National Semiconductor Operational Amplifiers (Op Amps) 5

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Part RoHS Manufacturer Amplifier Type Temperature Grade Terminal Form No. of Terminals Package Code Package Shape Total Dose (V) Package Body Material Nominal Unity Gain Bandwidth Maximum Negative Supply Voltage Limit Low-Bias Maximum Input Offset Voltage Maximum Average Bias Current (IIB) Surface Mount No. of Functions Minimum Common Mode Reject Ratio Technology Screening Level Nominal Common Mode Reject Ratio Maximum Supply Current Nominal Negative Supply Voltage (Vsup) Architecture Programmable Power Packing Method Nominal Supply Voltage / Vsup (V) Power Supplies (V) Package Style (Meter) Package Equivalence Code Maximum Input Offset Current (IIO) Minimum Slew Rate Sub-Category Nominal Slow Rate Maximum Non Linearity Maximum Supply Voltage Limit Terminal Pitch Maximum Operating Temperature Maximum Bias Current (IIB) @25C Maximum Common Mode Voltage Nominal Response Time Output Type Frequency Compensation Minimum Voltage Gain Minimum Operating Temperature Terminal Finish Nominal Voltage Gain Terminal Position Low-Offset JESD-30 Code Maximum Voltage Gain Moisture Sensitivity Level (MSL) Maximum Seated Height Width Qualification Minimum Output Current Nominal Bandwidth (3dB) Micropower JESD-609 Code Maximum Time At Peak Reflow Temperature (s) Peak Reflow Temperature (C) Length Wideband Power

LM675TLF05

National Semiconductor

Operational Amplifier

Commercial

Through-Hole

5

Rectangular

Plastic/Epoxy

5.5 MHz

-30 V

10000 uV

2 uA

No

1

BIPOLAR

90 dB

-25 V

25 V

Flange Mount

8 V/us

30 V

70 °C (158 °F)

0 °C (32 °F)

Matte Tin

Zig-Zag

R-PZFM-T5

1

e3

40 s

260 °C (500 °F)

LMC6442AIMMX

National Semiconductor

Operational Amplifier

Industrial

Gull Wing

8

TSSOP

Square

Plastic/Epoxy

9.5 kHz

0 V

4000 uV

4 pA

Yes

2

CMOS

92 dB

0 V

2.2 V

Small Outline, Thin Profile, Shrink Pitch

0.0022 V/us

16 V

0.026 in (0.65 mm)

85 °C (185 °F)

-40 °C (-40 °F)

Dual

S-PDSO-G8

0.043 in (1.1 mm)

0.118 in (3 mm)

No

0.118 in (3 mm)

CLC409AJ-QML

National Semiconductor

Operational Amplifier

Military

Through-Hole

8

DIP

Rectangular

Ceramic, Glass-Sealed

350 MHz

-7 V

No

9500 uV

No

1

BIPOLAR

MIL-STD-883

45 dB

14.2 mA

-5 V

Current Feedback

No

Rail

5 V

±5 V

In Line

DIP8,.3

1000 V/us

Operational Amplifiers

1200 V/us

7 V

0.1 in (2.54 mm)

125 °C (257 °F)

22 uA

Yes

-55 °C (-67 °F)

Tin Lead

Dual

No

R-GDIP-T8

0.2 in (5.08 mm)

0.3 in (7.62 mm)

No

No

e0

Yes

No

LM7171AIN/NOPB

National Semiconductor

Operational Amplifier

Industrial

Through-Hole

8

DIP

Rectangular

Plastic/Epoxy

125 MHz

-18 V

No

1500 uV

10 uA

No

1

BIPOLAR

104 dB

9.5 mA

-5 V

Voltage Feedback

No

Rail

5 V

±5/±15 V

In Line

DIP8,.3

Operational Amplifiers

950 V/us

18 V

0.1 in (2.54 mm)

85 °C (185 °F)

10 uA

YES (AVCL>=2)

2200

-40 °C (-40 °F)

Matte Tin

Dual

No

R-PDIP-T8

1

0.2 in (5.08 mm)

0.3 in (7.62 mm)

No

No

e3

0.386 in (9.817 mm)

Yes

No

LMH6725MA/NOPB

National Semiconductor

Operational Amplifier

Industrial

Gull Wing

14

SOP

Rectangular

Plastic/Epoxy

-6.75 V

No

3700 uV

5 uA

Yes

4

BIPOLAR

60 dB

5.6 mA

-5 V

Current Feedback

No

Rail

5 V

±2.5/±5 V

Small Outline

SOP14,.25

275 V/us

Operational Amplifiers

600 V/us

6.75 V

0.05 in (1.27 mm)

85 °C (185 °F)

4 uA

Yes

-40 °C (-40 °F)

Matte Tin

Dual

No

R-PDSO-G14

1

0.069 in (1.75 mm)

0.154 in (3.9 mm)

No

No

e3

40 s

260 °C (500 °F)

0.34 in (8.6235 mm)

Yes

No

Operational Amplifiers (Op Amps)

Operational amplifiers, or op-amps for short, are electronic circuits that provide a high gain amplification of an input voltage signal. They are widely used in electronic circuits for various signal processing tasks due to their versatile nature and high gain characteristics.

An op-amp typically has two input terminals (inverting and non-inverting), an output terminal, and a power supply. The output voltage of the op-amp is proportional to the difference between the voltages at the two input terminals, with the exact gain being determined by the circuit design.

Op-amps can be used in a variety of electronic circuits such as filters, amplifiers, oscillators, and voltage regulators. They can also be used as comparators, with the output switching to one of two voltage levels depending on the relationship between the two input voltages.

One of the main advantages of op-amps is that they can provide a very high gain, making them useful in amplifying small signals or reducing noise. They also have a wide range of input and output impedance, making them compatible with a wide range of electronic circuits. Additionally, op-amps can be designed to have very high input impedance, which means they can detect and amplify signals with minimal loading effects on the circuit they are connected to.