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LM324 Working Principle, Pinout and Specifications

FREE-SKY (HK) ELECTRONICS CO.,LIMITED / 08-06 11:51

The LM324 remains a popular quad operational amplifier because it combines four independent op-amps in one low-cost package. This guide explains the LM324 pin functions, electrical ratings, internal operation, circuit examples, common limitations, applications, alternatives, package dimensions, and manufacturing information.


Catalog

1. LM324 Quad Op-Amp IC
2. LM324 Pinout and Functions
3. LM324 Specifications and Electrical Ratings
4. How Does the LM324 Work
5. LM324 Input and Output Limitations
6. LM324 Typical Circuit Configurations
7. LM324 Wide Applications
8. LM324 vs. Other Op-Amps
9. LM324 Alternatives and Replacements
10. LM324 Mechanical Dimensions
11. Manufacturer
LM324 Quad Op-Amp IC

LM324 Quad Op-Amp IC

The LM324 is a general-purpose integrated circuit containing four independent operational amplifiers in one package. Each amplifier can increase the difference between two input voltages and can operate separately while sharing the same power-supply connections.

The IC supports single- or dual-supply operation. Depending on the manufacturer and version, its supply range is typically 3 V to 30 V, while newer LM324B versions may support up to 36 V. Its input common-mode range includes the negative supply or ground, which simplifies many single-supply circuit designs.The LM324 offers low power consumption, internal frequency compensation, and unity-gain stability. However, it is not a rail-to-rail op-amp, so its input and output cannot normally reach the positive supply voltage.

LM324 Pinout & Functions

LM324 Pinout & Functions
Pin
Pin Name
Function
1
1OUT
Output of operational amplifier 1
2
1IN−
Inverting input of operational amplifier 1
3
1IN+
Non-inverting input of operational amplifier 1
4
VCC+
Positive power-supply connection
5
2IN+
Non-inverting input of operational amplifier 2
6
2IN−
Inverting input of operational amplifier 2
7
2OUT
Output of operational amplifier 2
8
3OUT
Output of operational amplifier 3
9
3IN−
Inverting input of operational amplifier 3
10
3IN+
Non-inverting input of operational amplifier 3
11
VCC−
Negative power supply or ground in a single-supply circuit
12
4IN+
Non-inverting input of operational amplifier 4
13
4IN−
Inverting input of operational amplifier 4
14
4OUT
Output of operational amplifier 4

LM324 Specifications and Electrical Ratings

Specification
Rating
Number of amplifiers
4 independent op-amps
Recommended supply voltage
3 V to 30 V or ±1.5 V to ±15 V
Absolute maximum supply voltage
32 V total
Maximum differential input voltage
32 V
Input voltage limit
−0.3 V to 32 V
Input common-mode range
0 V to VCC − 1.5 V at 25°C; upper limit reduces to VCC − 2 V across the full temperature range
Input offset voltage
3 mV typical, 7 mV maximum at 25°C
Input bias current
20 nA typical, 250 nA maximum at 25°C
Open-loop voltage gain
100 V/mV typical; 25 V/mV minimum at 25°C
Gain-bandwidth product
1.2 MHz typical
Slew rate
0.5 V/µs typical
Common-mode rejection ratio
80 dB typical, 65 dB minimum
Supply current
0.7 mA typical and 1.2 mA maximum for all four amplifiers at 5 V with no load
High-level output voltage
At least VCC − 1.5 V at 25°C with a 2 kΩ load
Low-level output voltage
5 mV typical, 20 mV maximum with a load connected to ground
Output source current
30 mA typical at a 15 V supply
Output sink current
20 mA typical  
Short-circuit output current
±40 mA typical  
Operating temperature
0°C to +70°C
Storage temperature
−65°C to +150°C

How Does the LM324 Work?

The diagram shows the internal circuit of one LM324 operational amplifier. The other three amplifiers use the same basic structure and share the VCC and ground connections. The current regulators provide stable internal bias currents, helping the amplifier operate consistently when the supply voltage changes.

LM324 Funtional Block Diagram

The IN+ and IN− pins connect to the differential input stage. This stage compares the two input voltages. When IN+ is higher than IN−, the circuit drives the output upward. When IN− is higher, it drives the output downward.

The middle transistor stage provides most of the voltage gain. The internal capacitor controls the frequency response and helps prevent oscillation, allowing stable unity-gain operation.

The output stage delivers the amplified signal through the OUT pin. It can operate close to ground, but it cannot normally reach the positive supply rail. In a practical circuit, external negative feedback controls the final voltage gain and keeps the LM324 operating in its linear region.

LM324 Input and Output Limitations

The LM324 can sense input voltages at or near the negative supply rail. In a single-supply circuit, this means its input common-mode range includes ground. However, the input voltage should not approach the positive supply rail. At 25°C, the normal input range extends from ground to approximately 1.5 V below the positive supply. For reliable operation across the full temperature range, allow about 2 V of headroom.

The LM324 output is also not rail-to-rail. It can move close to ground when sinking only a small current, but it cannot reach the positive supply voltage. The highest output level depends on the load and is commonly about 1.5 V below the positive rail. Heavier loads reduce the available output range further.

Its limited 1.2 MHz gain-bandwidth product and typical 0.5 V/µs slew rate make it unsuitable for fast or high-frequency signals. The LM324 also supplies and sinks only modest output current, so it should not directly drive motors, relays, speakers, or other high-current loads. Exceeding these limits can cause clipping, distortion, inaccurate output, overheating, or unstable circuit operation.

LM324 Typical Circuit Configurations

LM324 Dual-Oscillator Buzzer Circuit

LM324 Dual-Oscillator Buzzer Circuit

This circuit uses two amplifiers inside the LM324 to produce a changing buzzer signal from a 12 V supply. U1:A works as a low-frequency oscillator. R1–R4 and capacitor C1 control its charging and discharging cycle, creating a slowly changing output signal.

U1:B forms another oscillator using R5–R8 and capacitor C2. The signal from U1:A affects the operation of U1:B, causing its output frequency or switching pattern to change. The resulting waveform drives the buzzer and produces a pulsing or alternating alarm sound. The exact sound depends on the resistor values, capacitor tolerances, and buzzer type. Although the diagram labels a 3–24 V buzzer, the applied voltage is limited by the circuit’s 12 V supply.

LM324 Output-Current Booster Circuit

LM324 Output-Current Booster Circuit

In this circuit, the first amplifier, IC1a, receives the input signal and controls three additional LM324 amplifiers. IC1b, IC1c, and IC1d are connected as voltage followers, so their outputs reproduce the same voltage while sharing the load current.

R2, R3, and R4 are 10 Ω output-balancing resistors. They reduce current differences between the three amplifiers and prevent their outputs from directly competing with one another. R1 returns the combined output signal to the inverting input of IC1a, creating overall negative feedback. C1 provides frequency compensation to improve stability. This arrangement increases the available output current, but it is still unsuitable for high-power loads because the LM324 has limited current capacity and may overheat.

LM324 RF Signal Detector and Alarm Circuit

This circuit is designed to detect a radio-frequency signal picked up by the antenna. The 1 nF capacitor couples the high-frequency signal into the detector while blocking direct current. The 1N34 germanium diodes rectify the received signal and produce a small voltage at the LM324 non-inverting input.

LM324 RF Signal Detector and Alarm Circuit

The LM324 compares this detected voltage with the level at its inverting input. When the detected signal is high enough, the LM324 output activates the 2N4401 transistor through the 1 kΩ resistor. The transistor then supplies current to the LED and piezo buzzer, producing a visual and audible warning.

This is a simple experimental detector rather than a precise RF measuring circuit. Its sensitivity depends strongly on the antenna, signal strength, diode characteristics, wiring, and nearby electrical noise. A defined reference voltage, filtering, and hysteresis would be needed for more reliable switching.

LM324 Wide Applications

• Sensor signal conditioning

• Light and sound detectors

• Battery voltage monitors

• Battery chargers

• Voltage and current measurement

• Active filters

• Oscillators and waveform generators

• LED level indicators

• Low-frequency function generators

• Voltage followers and buffers, etc.

LM324 vs. Other Op-Amps

Feature
LM324
LM358
MCP6004


Number of amplifiers
4
2
1
4
4
Typical supply range
3–30 V
3–30 V
Usually ±10 to ±15 V
7–36 V
1.8–6 V
Gain-bandwidth product
1.2 MHz
1.2 MHz
1 MHz
3 MHz
1 MHz
Slew rate
0.5 V/µs
0.5 V/µs
0.5 V/µs
13 V/µs
0.6 V/µs
Input includes negative rail
Yes
Yes
No
No
Yes
Rail-to-rail input
No
No
No
No
Yes
Rail-to-rail output
No
No
No
No
Yes
Input technology
Bipolar
Bipolar
Bipolar
JFET
CMOS
Main advantage
Four low-cost op-amps in one package
Compact dual version of LM324
Simple traditional op-amp
Faster response and high input impedance
Low-voltage rail-to-rail operation
Main limitation
Low speed and limited positive output swing
Only two amplifiers
Poor low-voltage and single-supply performance
Not suitable for very low supply voltages
Maximum supply limited to 6 V
Best suited for
General low-frequency circuits
Designs requiring one or two channels
Older dual-supply circuits
Faster signal and audio circuits
Low-voltage battery and microcontroller circuits

LM324 Alternatives and Replacements

• LM124

• LM2902

• LM2902B

Mechanical Dimensions

Mechanical Dimensions

Manufacturer

Texas Instruments designs, manufactures, packages, and tests analog ICs such as the LM324 through its global semiconductor operations. Its manufacturing network includes wafer fabrication plants, assembly and testing factories, wafer-bumping and probing facilities, and distribution centres. During production, individual dies are electrically tested at wafer level, packaged, and tested again to confirm that they meet the specified electrical, quality, and reliability requirements.


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