LM124_V05 TI | Alldatasheet
Document overview
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Technical content
LMx24, LMx24x, LMx24xx, LM2902, LM2902x, LM2902xx, LM2902xxx Quadruple Operational Amplifiers
1 Features
- Next-generation LM324B and LM2902B
- B versions are drop-in replacements for all versions of LM224, LM324, and LM2902
- Improved specifications of B version – Supply range: 3V to 36V (B, BA versions) – Low input offset voltage: ±2mV (BA version) / 3mV (B version) – ESD rating: 2kV (HBM), 1.5kV (CDM) – EMI rejection: integrated RF and EMI filter – Low input bias current: 50nA maximum (across –40°C to 125°C)
- Common-mode input voltage range includes V–
- Input voltage differential can be driven up to supply voltage
- For dual B versions, see LM358B and LM2904B
2 Applications
- Merchant network and server power supply units
- Multi-function printers
- Power supplies and mobile chargers
- Desktop PC and motherboard
- Indoor and outdoor air conditioners
- Washers, dryers, and refrigerators
- AC inverters, string inverters, central inverters, and voltage frequency drives
- Uninterruptible power supplies
3 Description
The LM324B and LM2902B devices are the next-generation versions of the industry-standard operational amplifiers (op amps) LM324 and LM2902, which include four high-voltage (36V) op amps. These devices provide outstanding value for cost-sensitive applications, with features including low offset (600µV, typical), common-mode input range to ground, and high differential input voltage capability. The LM324B and LM2902B are unity-gain stable and achieve a low offset voltage maximum of 3mV (2mV maximum for LM324BA and LM2902BA) and quiescent current of 240µA per amplifier (typical). High ESD (2kV HBM and 1.5kV CDM) and integrated EMI and RF filters enable the LM324B and LM2902B devices to be used in the most rugged, environmentally challenging applications. The LM324B and LM2902B can drop-in replace all versions of the LM224, LM324, and LM2902 devices.
Package Information
PART NUMBER(1) PACKAGE PACKAGE SIZE(2) LM324B, LM324BA, LM2902B, LM2902BA, LM324xx, LM224xx, LM124, LM2902xxx D (SOIC, 14) 8.65mm × 6mm LM324B, LM324BA, LM2902B, LM2902BA, LM324xx, LM124, LM2902xxx PW (TSSOP, 14) 5mm × 6.4mm LM324xx, LM224xx, LM2902xxx N (PDIP, 14) 19.3mm × 9.4mm LM324, LM324A, LM324K, LM324KA, LM2902, LM2902K NS (SOP, 14) 10.3mm × 7.8mm LM324A, LM2902K DB (SSOP, 14) 6.2mm × 7.8mm LM124A J (CDIP, 14) 19.56mm × 6.67mm W (CFP, 14) 9.21mm × 6.3mm FK (LCCC, 20) 8.89mm × 8.89mm LM324B, LM2902B RTE (WQFN, 16(3)) 3mm × 3mm (1) For more information, see Section 11. (2) The package size (length × width) is a nominal value and includes pins, where applicable. (3) This package is preview only. Family Comparison SPECIFICATION LM324B LM324BA LM2902B LM2902BA LM324 LM324A LM324K LM324KA LM2902 LM2902K LM2902KV LM2902KAV LM224 LM224A LM224K LM224KA LM124 LM124A Units Supply voltage 3 to 36 3 to 36 3 to 30 3 to 30 3 to 26 3 to 26 (K) 3 to 30 (KV, KAV) 3 to 30 3 to 30 3 to 30 V Offset voltage (max, 25°C) ± 3 ± 2 ± 3 ± 2 ± 7 ± 3 ± 7 ± 2 (KAV) ± 5 ± 3 ± 5 ± 3 ± 5 ± 2 mV Input bias current at 25 °C (typ / max) 10 / 35 10 / 35 20 / 250 15 / 100 20 / 250 20 / 250 20 / 150 – / 50 nA ESD (HBM) 2000 2000 500 2000 500 2000 500 2000 500 V Operating ambient temperature −40 to 85 −40 to 125 0 to 70 0 to 70 −40 to 125 −40 to 125 −25 to 85 −25 to 85 −55 to 125 °C LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 An IMPORTANT NOTICE at the end of this data sheet addresses availability, warranty, changes, use in safety-critical applications, intellectual property matters and other important disclaimers. PRODUCTION DATA.
5.6 Electrical Characteristics - LM2902B and
5.7 Electrical Characteristics for LM324, LM324K,
5.8 Electrical Characteristics for LM2902, LM2902K,
5.9 Electrical Characteristics for LM324A,
5.12 Typical Characteristics: All Devices Except B
11 Mechanical, Packaging, and Orderable
LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
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Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
4 Pin Configuration and Functions
21IN± 13 4IN ± 31IN+ 12 4IN+ 4VCC+ 11 VCC ± 52IN+ 10 3IN+ 62IN± 9 3IN ± 72OUT 8 3OUT Not to scale Figure 4-1. D, DB, J, N, NS, PW, and W Packages, 14-Pin SOIC, SSOP, CDIP, PDIP, SO, TSSOP, and CFP (Top View) 41IN+ 5NC 6VCC+ 7NC 82IN+ 92IN± 102OUT 11NC 123OUT 133IN± 14 3IN+ 15 NC
16 VCC ±
19 4IN ± 20 4OUT 1 NC 2 1OUT 3 1IN ± Not to scale Figure 4-2. FK Package, 20-Pin LCCC (Top View) 16 1IN-52IN– 11IN+ 12 4IN+ 15 1OUT62OUT 2VCC+ 11 VCC- 14 4OUT73OUT 3NC 10 NC 13 4IN-83IN- 42IN+ 9 3IN+ Not to scale Thermal Pad NOTE: RTE package is preview only Figure 4-3. RTE Package, 16-Pin WQFN (Top View) Table 4-1. Pin Functions PIN TYPE(1) DESCRIPTION NAME LCCC SOIC, TSSOP, PDIP, SSOP, SO, CDIP, and CFP WQFN 1IN– 3 2 16 I Negative input 1IN+ 4 3 1 I Positive input 1OUT 2 1 15 O Output 2IN– 9 6 5 I Negative input 2IN+ 8 5 4 I Positive input www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 3 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
Table 4-1. Pin Functions (continued) PIN TYPE(1) DESCRIPTION NAME LCCC SOIC, TSSOP, PDIP, SSOP, SO, CDIP, and CFP WQFN 2OUT 10 7 6 O Output 3IN– 13 9 8 I Negative input 3IN+ 14 10 9 I Positive input 3OUT 12 8 7 O Output 4IN– 19 13 13 I Negative input 4IN+ 18 12 12 I Positive input 4OUT 20 14 14 O Output VCC- 16 11 11 — Negative (lowest) supply or ground (for single-supply operation) 17 — 3, 10 — Do not connect VCC+ 6 4 2 — Positive (highest) supply (1) I = input, O = output LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
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Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
5 Specifications
5.1 Absolute Maximum Ratings
over operating free-air temperature range (unless otherwise noted)(1) LM324B, LM324BA, LM2902B, LM2902BA LM2902 LM324xx, LM224xx, LM2902xxx, LM124x UNIT MIN MAX MIN MAX MIN MAX Supply voltage, VCC (2) 40 26 32 V Differential input voltage, VID (3) ±40 ±26 ±32 V Input voltage, VI (either input) –0.3 40 –0.3 26 –0.3 32 V Duration of output short circuit (one amplifier) to ground at (or below) TA = 25°C, VCC ≤ 15 V(4) Unlimited Unlimited Unlimited Operating virtual junction temperature, TJ 150 150 150 °C Case temperature for 60 seconds FK package 260 °C Lead temperature 1.6 mm (1/16 inch) from case for 60 seconds J or W package 300 300 °C Storage temperature, Tstg –65 150 –65 150 –65 150 °C (1) Stresses beyond those listed under Absolute Maximum Ratings may cause permanent damage to the device. These are stress ratings only, and functional operation of the device at these or any other conditions beyond those indicated under Recommended Operating Conditions is not implied. Exposure to absolute-maximum-rated conditions for extended periods may affect device reliability. (2) All voltage values (except differential voltages and VCC specified for the measurement of IOS) are with respect to the network GND. (3) Differential voltages are at IN+, with respect to IN−. (4) Short circuits from outputs to VCC can cause excessive heating and eventual destruction.
5.2 ESD Ratings
LM324B, LM324BA, LM2902B, LM2902BA, LM224K, LM224KA, LM324K, LM324KA, LM2902K, LM2902KV, LM2902KAV V(ESD) Electrostatic discharge Human-body model (HBM), per ANSI/ESDA/JEDEC JS-001(1) ±2000 V Charged-device model (CDM), per JEDEC specification JESD22-C101 ±1000 LM124, LM124A, LM224, LM224A, LM324, LM324A, LM2902 V(ESD) Electrostatic discharge Human-body model (HBM), per ANSI/ESDA/JEDEC JS-001(1) ±500 V Charged-device model (CDM), per JEDEC specification JESD22-C101 ±1000 (1) JEDEC document JEP155 states that 500-V HBM allows safe manufacturing with a standard ESD control process.
5.3 Recommended Operating Conditions
over operating free-air temperature range (unless otherwise noted) LM324B, LM324BA, LM2902B, LM2902BA LM2902 LM324xx, LM224xx, LM2902xxx, LM124x UNIT MIN MAX MIN MAX MIN MAX VCC Supply voltage 3 36 3 26 3 30 V VCM Common-mode voltage 0 VCC – 2 0 VCC – 2 0 VCC – 2 V TA Operating free air temperature LM124x –55 125 LM2902xxx, LM2902Bx -40 125 –40 125 LM324Bx -40 85 LM224xx –25 85 LM324xx 0 70 www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 5 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
5.4 Thermal Information
THERMAL METRIC(1) LMx24, LM2902 LMx24 UNIT D (SOIC) DB (SSOP) N (PDIP) NS (SO) PW (TSSOP) RTE (WQFN) (5) FK (LCCC) J (CDIP) W (CFP)
14 PINS 14 PINS 14 PINS 14 PINS 14 PINS 16 PINS 20 PINS 14 PINS 14 PINS
RθJA (2) (3) Junction-to- ambient thermal resistance RθJC(top) (4) Junction-to-case (top) thermal resistance RθJC(bot) Junction-to-case (bottom) thermal resistance (1) For more information about traditional and new thermal metrics, see the Semiconductor and IC Package Thermal Metrics application note. (2) Short circuits from outputs to VCC can cause excessive heating and eventual destruction. (3) Maximum power dissipation is a function of TJ(max), RθJA, and TA. The maximum allowable power dissipation at any allowable ambient temperature is PD = (TJ(max) – TA)/RθJA. Operating at the absolute maximum TJ of 150°C can affect reliability. (4) Maximum power dissipation is a function of TJ(max), RθJA, and TC. The maximum allowable power dissipation at any allowable case temperature is PD = (TJ(max) – TC)/RθJC. Operating at the absolute maximum TJ of 150°C can affect reliability. (5) This package is preview only. LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
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Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
5.5 Electrical Characteristics - LM324B and LM324BA
For VS = (V+) – (V–) = 5 V to 36 V (±2.5 V to ±18 V), at TA = 25°C, VCM = VOUT = VS / 2, and RL = 10 kΩ connected to VS / 2 (unless otherwise noted) PARAMETER TEST CONDITIONS MIN TYP MAX UNIT OFFSET VOLTAGE VOS Input offset voltage LM324B ±0.6 ±3.0 mV TA = –40°C to 85°C ±4.0 LM324BA ±0.3 ±2 TA = –40°C to 85°C 2.5 dVOS/dT Input offset voltage drift RS = 0 Ω TA = –40°C to 85°C ±7 μV/°C PSRR Input offset voltage versus power supply 65 100 dB Channel separation f = 1 kHz to 20 kHz 120 dB INPUT VOLTAGE RANGE VCM Common-mode voltage range VS = 3 V to 36 V V– (V+) – 1.5 V VS = 5 V to 36 V TA = –40°C to 85°C V– (V+) – 2 CMRR Common-mode rejection ratio (V–) ≤ VCM ≤ (V+) – 1.5 V VS = 3 V to 36 V 70 80 dB (V–) ≤ VCM ≤ (V+) – 2 V VS = 5 V to 36 V TA = –40°C to 85°C 65 80 INPUT BIAS CURRENT IB Input bias current -10 -35 nA TA = –40°C to 85°C -60 dIOS/dT Input offset current drift TA = –40°C to 85°C 10 pA/°C IOS Input offset current ±0.5 ±4 nA TA = –40°C to 85°C ±5 dIOS/dT Input offset current drift TA = –40°C to 85°C 10 pA/°C NOISE EN Input voltage noise f = 0.1 to 10 Hz 3 μVPP eN Input voltage noise density RS = 100 Ω, VI = 0 V, f = 1 kHz (see Figure 7-2 for test circuit) 35 nV/√Hz INPUT CAPACITANCE ZID Differential 10 || 0.1 MΩ || pF ZICM Common-mode 4 || 1.5 GΩ || pF OPEN-LOOP GAIN AOL Open-loop voltage gain VS = 15 V, VO = 1 V to 11 V, RL ≥ 10 kΩ, connected to (V-) 50 100 V/mV TA = –40°C to 85°C 25 FREQUENCY RESPONSE GBW Gain-bandwidth product RL = 1 MΩ, CL = 20 pF (see Figure 7-1 for test circuit) 1.2 MHz SR Slew rate RL = 1 MΩ, CL = 30 pF, VI = ±10 V (see Figure 7-1 for test circuit) 0.5 V/μs Θm Phase margin G = + 1, RL = 10kΩ, CL = 20 pF 56 ° tS Settling time To 0.1%, VS = 5 V, 2-V Step , G = +1, CL = 100 pF 4 μs Overload recovery time VIN × gain > VS 10 μs THD+N Total harmonic distortion + noise G = + 1, f = 1 kHz, VO = 3.53 VRMS, VS = 36 V, RL = 100 kΩ, IOUT ≤ 50 µA, BW = 80 kHz 0.001% OUTPUT VO Voltage output swing from rail Positive Rail (V+) IOUT = -50 µA 1.35 1.5 V VO IOUT = -1 mA 1.4 1.6 V VO IOUT = -5 mA 1.5 1.75 V VO Negative Rail (V-) IOUT = 50 µA 100 150 mV VO IOUT = 1 mA 0.75 1 V VO VS = 5 V, RL ≤ 10 kΩ connected to (V–) TA = –40°C to 85°C 5 20 mV IO Output current VS = 15 V; VO = V-; VID = 1 V Source -20(1) -30 mA TA = –40°C to 85°C -10(1) mA VS = 15 V; VO = V+; VID = -1 V Sink 10(1) 20 mA TA = –40°C to 85°C 5(1) mA VID = -1 V; VO = (V-) + 200 mV 50 85 μA ISC Short-circuit current VS = 20 V, (V+) = 10 V, (V-) = -10 V, VO = 0 V ±40 ±60 mA CLOAD Capacitive load drive 100 pF www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 7 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
5.5 Electrical Characteristics - LM324B and LM324BA (continued)
For VS = (V+) – (V–) = 5 V to 36 V (±2.5 V to ±18 V), at TA = 25°C, VCM = VOUT = VS / 2, and RL = 10 kΩ connected to VS / 2 (unless otherwise noted) PARAMETER TEST CONDITIONS MIN TYP MAX UNIT RO Open-loop output impedance f = 1 MHz, IO = 0 A 300 Ω POWER SUPPLY IQ Quiescent current per amplifier VS = 5 V; IO = 0 A TA = –40°C to 85°C 240 300 μA VS = 36 V; IO = 0 A TA = –40°C to 85°C 350 750 μA (1) Specified by design and characterization only. LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
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Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
5.6 Electrical Characteristics - LM2902B and LM2902BA
For VS = (V+) – (V–) = 5 V to 36 V (±2.5 V to ±18 V), at TA = 25°C, VCM = VOUT = VS / 2, and RL = 10 kΩ connected to VS / 2 (unless otherwise noted) PARAMETER TEST CONDITIONS MIN TYP MAX UNIT OFFSET VOLTAGE VOS Input offset voltage LM2902B ±0.6 ±3.0 mV TA = –40°C to 125°C ±4.0 LM2902BA ±0.3 ±2 TA = –40°C to 125°C 2.5 dVOS/dT Input offset voltage drift RS = 0 Ω TA = –40°C to 125°C ±7 μV/°C PSRR Input offset voltage versus power supply 65 100 dB Channel separation f = 1 kHz to 20 kHz 120 dB INPUT VOLTAGE RANGE VCM Common-mode voltage range VS = 3 V to 36 V V– (V+) – 1.5 V VS = 5 V to 36 V TA = –40°C to 125°C V– (V+) – 2 CMRR Common-mode rejection ratio (V–) ≤ VCM ≤ (V+) – 1.5 V VS = 3 V to 36 V 70 80 dB (V–) ≤ VCM ≤ (V+) – 2 V VS = 5 V to 36 V TA = –40°C to 125°C 65 80 INPUT BIAS CURRENT IB Input bias current -10 -35 nA TA = –40°C to 125°C -60 dIOS/dT Input offset current drift TA = –40°C to 125°C 10 pA/°C IOS Input offset current ±0.5 ±4 nA TA = –40°C to 125°C ±5 dIOS/dT Input offset current drift TA = –40°C to 125°C 10 pA/°C NOISE EN Input voltage noise f = 0.1 to 10 Hz 3 μVPP eN Input voltage noise density RS = 100 Ω, VI = 0 V, f = 1 kHz (see Figure 7-2 for test circuit) 35 nV/√Hz INPUT CAPACITANCE ZID Differential 10 || 0.1 MΩ || pF ZICM Common-mode 4 || 1.5 GΩ || pF OPEN-LOOP GAIN AOL Open-loop voltage gain VS = 15 V, VO = 1 V to 11 V, RL ≥ 10 kΩ, connected to (V-) 50 100 V/mV TA = –40°C to 125°C 25 FREQUENCY RESPONSE GBW Gain-bandwidth product RL = 1 MΩ, CL = 20 pF (see Figure 7-1 for test circuit) 1.2 MHz SR Slew rate RL = 1 MΩ, CL = 30 pF, VI = ±10 V (see Figure 7-1 for test circuit) 0.5 V/μs Θm Phase margin G = + 1, RL = 10kΩ, CL = 20 pF 56 ° tS Settling time To 0.1%, VS = 5 V, 2-V Step , G = +1, CL = 100 pF 4 μs Overload recovery time VIN × gain > VS 10 μs THD+N Total harmonic distortion + noise G = + 1, f = 1 kHz, VO = 3.53 VRMS, VS = 36V, RL = 100 kΩ, IOUT ≤ 50 µA, BW = 80 kHz 0.001% OUTPUT VO Voltage output swing from rail Positive Rail (V+) IOUT = -50 µA 1.35 1.5 V VO IOUT = -1 mA 1.4 1.6 V VO IOUT = -5 mA 1.5 1.75 V VO Negative Rail (V-) IOUT = 50 µA 100 150 mV VO IOUT = 1 mA 0.75 1 V VO VS = 5 V, RL ≤ 10 kΩ connected to (V–) TA = –40°C to 125°C 5 20 mV IO Output current VS = 15 V; VO = V-; VID = 1 V Source -20(1) -30 mA TA = –40°C to 125°C -10(1) mA VS = 15 V; VO = V+; VID = -1 V Sink 10(1) 20 mA TA = –40°C to 125°C 5(1) mA VID = -1 V; VO = (V-) + 200 mV 50 85 μA ISC Short-circuit current VS = 20 V, (V+) = 10 V, (V-) = -10 V, VO = 0 V ±40 ±60 mA CLOAD Capacitive load drive 100 pF www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 9 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
5.6 Electrical Characteristics - LM2902B and LM2902BA (continued)
For VS = (V+) – (V–) = 5 V to 36 V (±2.5 V to ±18 V), at TA = 25°C, VCM = VOUT = VS / 2, and RL = 10 kΩ connected to VS / 2 (unless otherwise noted) PARAMETER TEST CONDITIONS MIN TYP MAX UNIT RO Open-loop output impedance f = 1 MHz, IO = 0 A 300 Ω POWER SUPPLY IQ Quiescent current per amplifier VS = 5 V; IO = 0 A TA = –40°C to 125°C 240 300 μA VS = 36 V; IO = 0 A TA = –40°C to 125°C 750 μA (1) Specified by design and characterization only. LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
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Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
5.7 Electrical Characteristics for LM324, LM324K, LM224, LM224K, and LM124
at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS(1) TA (2) LM124, LM224, LM224K LM324, LM324K UNIT MIN TYP(3) MAX MIN TYP(3) MAX VIO Input offset voltage VCC = 5 V to MAX, VIC = VICRmin, VO = 1.4 V 25°C 3 5 3 7 mV Full range 7 9 IIO Input offset current VO = 1.4 V 25°C 2 30 2 50 nA Full range 100 150 IIB Input bias current VO = 1.4 V 25°C –20 –150 –20 –250 nA Full range –300 –500 VICR Common-mode input voltage range VCC = 5 V to MAX 25°C 0 to VCC – 1.5 0 to VCC – 1.5 V Full range 0 to VCC – 2 0 to VCC – 2 VOH High-level output voltage RL = 2 kΩ 25°C VCC – 1.5 VCC – 1.5 V VCC = MAX RL = 2 kΩ Full range 26 26 RL ≥ 10 kΩ Full range 27 28 27 28 VOL Low-level output voltage RL ≤ 10 kΩ Full range 5 20 5 20 mV AVD Large-signal differential voltage amplification VCC+ = 15 V, VO = 1 V to 11 V, RL ≥ 2 kΩ 25°C 50 100 25 100 V/mV Full range 25 15 CMRR Common-mode rejection ratio VIC = VICRmin 25°C 70 80 65 80 dB kSVR Supply-voltage rejection ratio (ΔVCC /ΔVIO) 25°C 65 100 65 100 dB VO1/ VO2 Crosstalk attenuation f = 1 kHz to 20 kHz 25°C 120 120 dB IO Output current VCC = 15 V, VID = 1 V, VO = 0 Source mA Full range –10 –10 VCC = 15 V, VID = –1 V, VO = 15 V Sink 25°C 10 20 10 20 Full range 5 5 VID = –1 V, VO = 200 mV 25°C 12 30 12 30 μA IOS Short-circuit output current VCC at 5 V, VO = 0, VCC- at –5 V 25°C ±40 ±60 ±40 ±60 mA ICC Supply current (four amplifiers) mAVCC = MAX, VO = 0.5 VCC, no load Full range 1.4 3 1.4 3 (1) All characteristics are measured under open-loop conditions, with zero common-mode input voltage, unless otherwise specified. MAX VCC for testing purposes is 26 V for LM2902 and 30 V for the others. (2) Full range is –55°C to +125°C for LM124, –25°C to +85°C for LM224, and 0°C to 70°C for LM324. (3) All typical values are at TA = 25°C. www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 11 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
5.8 Electrical Characteristics for LM2902, LM2902K, LM2902KV and LM2902KAV
at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS(1) TA (2) LM2902, LM2902K LM2902KV, LM2902KAV UNIT MIN TYP(3) MAX MIN TYP(3) MAX VIO Input offset voltage VCC = 5 V to MAX, VIC = VICRmin, VO = 1.4 V Non-A-suffix devices 25°C 3 7 3 7 mV Full range 10 10 A-suffix devices 25°C 1 2 Full range 4 ΔVIO/ΔT Input offset voltage temperature drift RS = 0 Ω Full range 7 μV/°C IIO Input offset current VO = 1.4 V 25°C 2 50 2 50 nA Full range 300 150 ΔIIO/ΔT Input offset voltage temperature drift Full range 10 pA/°C IIB Input bias current VO = 1.4 V 25°C –20 –250 –20 –250 nA Full range –500 –500 VICR Common-mode input voltage range VCC = 5 V to MAX 25°C 0 to VCC – 1.5 0 to VCC – 1.5 V Full range 0 to VCC – 2 0 to VCC – 2 VOH High-level output voltage RL = 10 kΩ 25°C VCC – 1.5 VCC – 1.5 V VCC = MAX RL = 2 kΩ Full range 22 26 RL ≥ 10 kΩ Full range 23 24 27 VOL Low-level output voltage RL ≤ 10 kΩ Full range 5 20 5 20 mV AVD Large-signal differential voltage amplification VCC = 15 V, VO = 1 V to 11 V, RL ≥ 2 kΩ 25°C 25 100 25 100 V/mV Full range 15 15 CMRR Common-mode rejection ratio VIC = VICRmin 25°C 50 80 60 80 dB kSVR Supply-voltage rejection ratio (ΔVCC /ΔVIO) 25°C 50 100 60 100 dB VO1/ VO2 Crosstalk attenuation f = 1 kHz to 20 kHz 25°C 120 120 dB IO Output current VCC = 15 V, VID = 1 V, VO = 0 Source mA Full range –10 –10 VCC = 15 V, VID = –1 V, VO = 15 V Sink 25°C 10 20 10 20 Full range 5 5 VID = –1 V, VO = 200 mV 25°C 30 12 40 μA IOS Short-circuit output current VCC at 5 V, VO = 0, VCC- at –5 V 25°C ±40 ±60 ±40 ±60 mA ICC Supply current (four amplifiers) mAVCC = MAX, VO = 0.5 VCC, no load Full range 1.4 3 1.4 3 (1) All characteristics are measured under open-loop conditions, with zero common-mode input voltage, unless otherwise specified. MAX VCC for testing purposes is 26 V for LM2902 and 32 V for LM2902V. (2) Full range is –40°C to +125°C for LM2902. (3) All typical values are at TA = 25°C. LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
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5.9 Electrical Characteristics for LM324A, LM324KA, LM224A, LM224KA, and LM124A
at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS(1) TA (2) LM124A LM224A, LM224KA LM324A, LM324KA UNIT MIN TYP(3) MAX MIN TYP(3) MAX MIN TYP(3) MAX VIO Input offset voltage VCC = 5 V to 30 V, VIC = VICRmin, VO = 1.4 V 25°C 2 2 3 2 3 mV Full range 4 4 5 IIO Input offset current VO = 1.4 V 25°C 10 2 15 2 30 nA Full range 30 30 75 IIB Input bias current VO = 1.4 V 25°C –50 –15 –80 –15 –100 nA Full range –100 –100 –200 VICR Common-mode input voltage range VCC = 30 V 25°C 0 to VCC − 1.5 0 to VCC – 1.5 0 to VCC – 1.5 V Full range 0 to VCC − 2 0 to VCC – 2 0 to VCC – 2 VOH High-level output voltage RL = 2 kΩ 25°C VCC − 1.5 VCC – 1.5 VCC – 1.5 V VCC = 30 V RL= 2 kΩ Full range 26 26 26 RL≥ 10 kΩ Full range 27 27 28 27 28 VOL Low-level output voltage RL ≤ 10 kΩ Full range 20 5 20 5 20 mV AVD Large-signal differential voltage amplification VCC = 15 V, VO = 1 V to 11 V, RL ≥ 2 kΩ 25°C 50 100 50 100 25 100 V/mV Full range 25 25 15 CMRR Common-mode rejection ratio VIC = VICRmin 25°C 70 70 80 65 80 dB kSVR Supply-voltage rejection ratio (ΔVCC /ΔVIO) 25°C 65 65 100 65 100 dB VO1/ VO2 Crosstalk attenuation f = 1 kHz to 20 kHz 25°C 120 120 120 dB IO Output current VCC = 15 V, VID = 1 V, VO = 0 Source mA Full range –10 –10 –10 VCC = 15 V, VID = –1 V, VO = 15 V Sink 25°C 10 10 20 1 20 Full range 5 5 5 VID = −1 V, VO = 200 mV 25°C 12 12 30 12 30 μA IOS Short-circuit output current VCC at 5 V, VCC- at –5 V, VO = 0 25°C ±40 ±60 ±40 ±60 ±40 ±60 mA ICC Supply current (four amplifiers) mAVCC = 30 V, VO = 15 V, no load Full range 1.4 3. 1.4 3 1.4 3 (1) All characteristics are measured under open-loop conditions, with zero common-mode input voltage, unless otherwise specified. (2) Full range is –55°C to +125°C for LM124A, –25°C to +85°C for LM224A, and 0°C to 70°C for LM324A. (3) All typical values are at TA = 25°C.
5.10 Operating Conditions
VCC = ±15 V, TA = 25°C PARAMETER TEST CONDITIONS TYP UNIT SR Slew rate at unity gain RL = 1 MΩ, CL = 30 pF, VI = ±10 V (see Figure 6-1) 0.5 V/μs B1 Unity-gain bandwidth RL = 1 MΩ, CL = 20 pF (see Figure 6-1) 1.2 MHz Vn Equivalent input noise voltage RS = 100 Ω, VI = 0 V, f = 1 kHz (see Figure 6-2) 35 nV/√Hz www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 13 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
5.11 Typical Characteristics
This typical characteristics section is applicable for LM324B and LM2902B. Typical characteristics data in this section was taken with TA = 25°C, VS = 36 V (±18 V), VCM = VS / 2, RLOAD = 10 kΩ connected to VS / 2 (unless otherwise noted). O f f s e t V o l t a g e ( µ V ) Amplifiers (%) - 3 0 0 0 - 1 8 0 0 - 6 0 0 6 0 0 1 8 0 0 3 0 0 0 2 . 5 7 . 5 1 0 1 2 . 5 1 5 1 7 . 5 2 0 Figure 5-1. Offset Voltage Production Distribution Figure 5-2. Offset Voltage Drift Distribution Figure 5-3. Offset Voltage vs Temperature V C M ( V ) VOS(µV) - 1 8 - 1 4 - 1 0 - 6 - 2 2 6 1 0 1 4 - 3 0 0 0 - 2 4 0 0 - 1 8 0 0 - 1 2 0 0 - 6 0 0 6 0 0 1 2 0 0 1 8 0 0 2 4 0 0 3 0 0 0 Figure 5-4. Offset Voltage vs Common-Mode Voltage F r e q u e n c y ( H z ) Gain (dB) Phase (degree) - 2 0 - 3 0 - 1 0 - 1 5 0 0 1 0 1 5 2 0 3 0 3 0 4 5 4 0 6 0 5 0 7 5 6 0 9 0 7 0 1 0 5 8 0 1 2 0 9 0 1 3 5 1 0 0 1 5 0 1 0 0 1 k 1 0 k 1 0 0 k 1 M G a i n , V S = 3 6 V P h a s e , V S = 3 6 V G a i n , V S = 5 V P h a s e , V S = 5 V Figure 5-5. Open-Loop Gain and Phase vs Frequency Figure 5-6. Closed-Loop Gain vs Frequency LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
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5.11 Typical Characteristics (continued)
This typical characteristics section is applicable for LM324B and LM2902B. Typical characteristics data in this section was taken with TA = 25°C, VS = 36 V (±18 V), VCM = VS / 2, RLOAD = 10 kΩ connected to VS / 2 (unless otherwise noted). Figure 5-7. Output Voltage Swing vs Output Current (Sourcing) Figure 5-8. CMRR vs Frequency F r e q u e n c y ( H z ) PSRR (dB) 2 0 3 0 4 0 5 0 6 0 7 0 8 0 9 0 1 0 0 1 0 0 1 k 1 0 k 1 0 0 k 1 M 1 0 M P S R R + ( d B ) P S R R − ( d B ) Figure 5-9. PSRR vs Frequency Figure 5-10. Common-Mode Rejection Ratio vs Temperature T e m p e r a t u r e ( ° C ) Power-Supply Rejection Ratio (µV/V) - 4 0 - 2 0 0 2 0 4 0 6 0 8 0 1 0 0 1 2 0 1 2 1 6 2 0 VS = 5 V to 36 V Figure 5-11. Power Supply Rejection Ratio vs Temperature T i m e ( 1 s / d i v ) Amplitude (500 nV/div) Figure 5-12. 0.1-Hz to 10-Hz Noise www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 15 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
This typical characteristics section is applicable for LM324B and LM2902B. Typical characteristics data in this section was taken with TA = 25°C, VS = 36 V (±18 V), VCM = VS / 2, RLOAD = 10 kΩ connected to VS / 2 (unless otherwise noted). Figure 5-13. Input Voltage Noise Spectral Density vs Frequency F r e q u e n c y ( H z ) THD+N (dB) - 1 1 0 - 1 0 0 - 9 0 - 8 0 - 7 0 - 6 0 - 5 0 - 4 0 1 0 0 1 k 1 0 k R L = 2 k R L = 1 0 k G = 1, f = 1 kHz, BW = 80 kHz, VOUT = 10 VPP, RL connected to V– Figure 5-14. THD+N Ratio vs Frequency, G = 1 G = –1, f = 1 kHz, BW = 80 kHz, VOUT = 10 VPP, RL connected to V– See Section 6 Figure 5-15. THD+N Ratio vs Frequency, G = –1 G = 1, f = 1 kHz, BW = 80 kHz, RL connected to V– Figure 5-16. THD+N vs Output Amplitude, G = 1 G = –1, f = 1 kHz, BW = 80 kHz, RL connected to V– See Section 6 Figure 5-17. THD+N vs Output Amplitude, G = –1 S u p p l y V o l t a g e ( V ) IQ(µA) 3 6 9 1 2 1 5 1 8 2 1 2 4 2 7 3 0 3 3 3 6 1 0 0 2 0 0 3 0 0 4 0 0 5 0 0 6 0 0 - 4 0 ° C 2 5 ° C 1 2 5 ° C Figure 5-18. Quiescent Current vs Supply Voltage LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
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This typical characteristics section is applicable for LM324B and LM2902B. Typical characteristics data in this section was taken with TA = 25°C, VS = 36 V (±18 V), VCM = VS / 2, RLOAD = 10 kΩ connected to VS / 2 (unless otherwise noted). T e m p e r a t u r e ( ° C ) IQ(µA) - 4 0 - 2 0 0 2 0 4 0 6 0 8 0 1 0 0 1 2 0 1 5 0 2 0 0 2 5 0 3 0 0 3 5 0 4 0 0 4 5 0 5 0 0 5 5 0 6 0 0 6 5 0 V S = 5 V V S = 3 6 V Figure 5-19. Quiescent Current vs Temperature F r e q u e n c y ( H z ) Open-Loop Output Impedance () 1 0 2 0 3 0 5 0 7 0 1 0 0 2 0 0 3 0 0 5 0 0 7 0 0 1 0 0 0 1 k 1 0 k 1 0 0 k 1 M 1 0 M I O U T = 0 m A I O U T = 5 m A Figure 5-20. Open-Loop Output Impedance vs Frequency C a p a c i t i v e L o a d ( p F ) Overshoot (%) 0 5 0 1 0 0 1 5 0 2 0 0 2 5 0 3 0 0 3 5 0 1 0 1 5 2 0 2 5 3 0 R I S O = 0 , o v e r s h o o t ( + ) R I S O = 0 , o v e r s h o o t ( − ) G = 1, 100-mV output step, RL = open Figure 5-21. Small-Signal Overshoot vs Capacitive Load C a p a c i t i v e L o a d ( p F ) Overshoot (%) 0 4 0 8 0 1 2 0 1 6 0 2 0 0 1 0 R I S O = 0 , o v e r s h o o t ( + ) R I S O = 0 , o v e r s h o o t ( − ) G = –1, 100-mV output step, RL = open Figure 5-22. Small-Signal Overshoot vs Capacitive Load G = +1, RL = 10 kΩ, CL = 20 pF Figure 5-23. Phase Margin vs Capacitive Load T i m e ( 1 s / d i v ) Amplitude (1 V/div) I n p u t O u t p u t G = –10 Figure 5-24. Overload Recovery (Positive Rail) www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 17 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
This typical characteristics section is applicable for LM324B and LM2902B. Typical characteristics data in this section was taken with TA = 25°C, VS = 36 V (±18 V), VCM = VS / 2, RLOAD = 10 kΩ connected to VS / 2 (unless otherwise noted). T i m e ( 1 s / d i v ) Amplitude (1 V/div) I n p u t O u t p u t G = –10 Figure 5-25. Overload Recovery (Negative Rail) T i m e ( 2 0 µ s / d i v ) Amplitude (2 mV/div) I n p u t O u t p u t G = 1, RL = open Figure 5-26. Small-Signal Step Response, G = 1 T i m e ( 2 0 µ s / d i v ) Amplitude (2 mV/div) I n p u t O u t p u t G = –1, RL = open, RFB = 10K See Section 6 Figure 5-27. Small-Signal Step Response, G = –1 T i m e ( 1 s / d i v ) Amplitude (5 mV/div) - 1 5 - 1 0 - 5 1 0 1 5 G = 1, RL = open Figure 5-28. Large-Signal Step Response (Falling) G = 1, RL = open Figure 5-29. Large-Signal Step Response, G = 1 T i m e ( 2 0 µ s / d i v ) Amplitude (1 V/div) I n p u t O u t p u t G = –1, RL = open Figure 5-30. Large-Signal Step Response, G = –1 LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
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This typical characteristics section is applicable for LM324B and LM2902B. Typical characteristics data in this section was taken with TA = 25°C, VS = 36 V (±18 V), VCM = VS / 2, RLOAD = 10 kΩ connected to VS / 2 (unless otherwise noted). Figure 5-31. Short-Circuit Current vs Temperature F r e q u e n c y ( H z ) Maximum Output Voltage (V) 1 0 1 1 1 2 1 3 1 4 1 5 1 0 0 1 k 1 0 k 1 0 0 k 1 M VS = 15 V Figure 5-32. Maximum Output Voltage vs Frequency F r e q u e n c y ( H z ) Crosstalk (dB) - 1 4 0 - 1 3 0 - 1 2 0 - 1 1 0 - 1 0 0 - 9 0 - 8 0 - 7 0 1 k 1 0 k 1 0 0 k 1 M 1 0 M Figure 5-33. Channel Separation vs Frequency F r e q u e n c y ( H z ) EMIRR (dB) 3 0 4 0 5 0 6 0 7 0 8 0 9 0 1 M 1 0 M 1 0 0 M 1 G Figure 5-34. EMIRR (Electromagnetic Interference Rejection Ratio) vs Frequency www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 19 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
5.12 Typical Characteristics: All Devices Except B and BA Versions
Output Sink Current (mA) Output Voltage (V) 0.01 0.02 0.03 0.05 0.1 0.2 0.3 0.5 D001 VCC = 15 V VCC = 5 V VCC = 30 V Figure 5-35. Output Sinking Characteristics Output Source Current (mA) Output Voltage Referenced to +Vcc (V) D002 VCC = 15 V Figure 5-36. Output Sourcing Characteristics Temperature (qC) Iout (A) -55 -40 -25 -10 5 20 35 50 65 80 95 110 125 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 D003 Figure 5-37. Source Current Limiting Time (PS) Output Voltage (V) 0 5 10 15 20 25 30 35 40 45 50 0.25 0.5 0.75 1.25 1.5 1.75 2.25 2.5 2.75 3.25 D004 Input Output Figure 5-38. Voltage Follower Large Signal Response (50 pF) Frequency (Hz) Common-Mode Rejection Ratio (dB) 100 200 5001000 10000 100000 1000000 D006 Figure 5-39. Common-Mode Rejection Ratio Frequency (Hz) Output Swing (Vpp) 1000 2000 5000 10000 100000 1000000 2.5 7.5 12.5 17.5 D007 Figure 5-40. Maximum Output Swing vs. Frequency (VCC = 15 V) LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
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6 Parameter Measurement Information
VCC− Figure 6-1. Unity-Gain Amplifier VO 100 Ω VCC+ VCC− RS 900 Ω VI = 0 V Figure 6-2. Noise-Test Circuit
7 Detailed Description
7.1 Overview
These devices consist of four independent high-gain frequency-compensated operational amplifiers that are designed specifically to operate from a single supply over a wide range of voltages. Operation from split supplies is also possible if the difference between the two supplies is 3 V to 36 V (B and BA versions), 3 V to 26 V (for LM2902 devices), or 3 V to 30 V (for all other devices), and V CC is at least 1.5 V more positive than the input common-mode voltage. The low supply-current drain is independent of the magnitude of the supply voltage. Applications include transducer amplifiers, DC amplification blocks, and all the conventional operational-amplifier circuits that can be more easily implemented in single-supply-voltage systems. For example, the LM324B and LM2902B devices can be operated directly from the standard 5-V supply that is used in digital systems and provides the required interface electronics, without requiring additional ±15-V supplies. www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 21 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
7.2 Functional Block Diagram
ESD protection cells - available on B, BA, and K versions only LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
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7.3 Feature Description
7.3.1 Unity-Gain Bandwidth
Gain bandwidth product is found by multiplying the measured bandwidth of an amplifier by the gain at which that bandwidth was measured. These devices have a high gain bandwidth of 1.2 MHz.
7.3.2 Slew Rate
The slew rate is the rate at which an operational amplifier can change the output when there is a change on the input. These devices have a 0.5-V/μs slew rate.
7.3.3 Input Common Mode Range
The valid common mode range is from device ground to V CC – 1.5 V (V CC – 2 V across temperature). Inputs may exceed V CC up to the maximum V CC without device damage. At least one input must be in the valid input common mode range for output to be correct phase. If both inputs exceed valid range, then output phase is undefined. If either input is less than –0.3 V, then input current should be limited to 1 mA and output phase is undefined.
7.4 Device Functional Modes
These devices are powered on when the supply is connected. This device can be operated as a single supply operational amplifier or dual supply amplifier depending on the application. www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 23 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
8 Application and Implementation
Information in the following applications sections is not part of the TI component specification, and TI does not warrant its accuracy or completeness. TI’s customers are responsible for determining suitability of components for their purposes, as well as validating and testing their design implementation to confirm system functionality.
8.1 Application Information
The LMx24 and LM2902 operational amplifiers are useful in a wide range of signal conditioning applications. Inputs can be powered before VCC for flexibility in multiple supply circuits.
8.2 Typical Application
A typical application for an operational amplifier in an inverting amplifier. This amplifier takes a positive voltage on the input, and makes it a negative voltage of the same magnitude. In the same manner, it also makes negative voltages positive. Vsup+ VOUT RF VIN RI Vsup- Figure 8-1. Application Schematic
8.2.1 Design Requirements
The supply voltage must be chosen such that it is larger than the input voltage range and output range. For instance, this application will scale a signal of ±0.5 V to ±1.8 V. Setting the supply at ±12 V is sufficient to accommodate this application.
8.2.2 Detailed Design Procedure
Determine the gain required by the inverting amplifier using Equation 1 and Equation 2: A V = V OU T VI N (1) A V = 1.8 − 0.5 = − 3.6 (2) Once the desired gain is determined, choose a value for RI or RF. Choosing a value in the k Ω range is desirable because the amplifier circuit uses currents in the mA range. This choice makes sure that the part does not draw too much current. This example chooses 10 k Ω for RI, which means 36 k Ω is used for RF. This was determined by Equation 3. A V = RF RI (3) LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
24 Submit Document Feedback Copyright © 2024 Texas Instruments Incorporated
Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
8.2.3 Application Curve
-1.5 -0.5 0.5 1.5 0 0.5 1 1.5 2 Volts Time (ms) VIN VOUT Figure 8-2. Input and Output Voltages of the Inverting Amplifier
8.3 Power Supply Recommendations
Supply voltages larger than 32 V for a single supply, or outside the range of ±16 V for a dual supply can permanently damage the device (see the Section 5.1). Place 0.1-μF bypass capacitors close to the power-supply pins to reduce errors coupling in from noisy or high impedance power supplies. For more detailed information on bypass capacitor placement, refer to the Section 8.4.
8.4 Layout
8.4.1 Layout Guidelines
For best operational performance of the device, use good PCB layout practices, including:
- Noise can propagate into analog circuitry through the power pins of the circuit as a whole, as well as the operational amplifier. Bypass capacitors are used to reduce the coupled noise by providing low impedance power sources local to the analog circuitry. – Connect low-ESR, 0.1-μF ceramic bypass capacitors between each supply pin and ground, placed as close to the device as possible. A single bypass capacitor from V+ to ground is applicable for single supply applications.
- Separate grounding for analog and digital portions of circuitry is one of the simplest and most-effective methods of noise suppression. One or more layers on multilayer PCBs are usually devoted to ground planes. A ground plane helps distribute heat and reduces EMI noise pickup. Make sure to physically separate digital and analog grounds, paying attention to the flow of the ground current.
- To reduce parasitic coupling, run the input traces as far away from the supply or output traces as possible. If it is not possible to keep them separate, it is much better to cross the sensitive trace perpendicular as opposed to in parallel with the noisy trace.
- Place the external components as close to the device as possible. Keeping RF and RG close to the inverting input minimizes parasitic capacitance, as shown in Section 8.4.2.
- Keep the length of input traces as short as possible. Always remember that the input traces are the most sensitive part of the circuit.
- Consider a driven, low-impedance guard ring around the critical traces. A guard ring can significantly reduce leakage currents from nearby traces that are at different potentials. www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 25 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
8.4.2 Layout Examples
VCC+IN1í IN1+ VCCí NC OUT NC RG RIN RF GND VIN VS-GND VS+ GND Run the input traces as far away from the supply lines as possible Only needed for dual-supply operation Place components close to device and to each other to reduce parasitic errors Use low-ESR, ceramic bypass capacitor (or GND for single supply) Ground (GND) plane on another layerVOUT Figure 8-3. Operational Amplifier Board Layout for Noninverting Configuration RIN RG RF VOUT VIN Figure 8-4. Operational Amplifier Schematic for Noninverting Configuration LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
26 Submit Document Feedback Copyright © 2024 Texas Instruments Incorporated
Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
9 Device and Documentation Support
9.1 Receiving Notification of Documentation Updates
To receive notification of documentation updates, navigate to the device product folder on ti.com. Click on Notifications to register and receive a weekly digest of any product information that has changed. For change details, review the revision history included in any revised document.
9.2 Support Resources
TI E2E™ support forums are an engineer's go-to source for fast, verified answers and design help — straight from the experts. Search existing answers or ask your own question to get the quick design help you need. Linked content is provided "AS IS" by the respective contributors. They do not constitute TI specifications and do not necessarily reflect TI's views; see TI's Terms of Use.
9.3 Trademarks
TI E2E™ is a trademark of Texas Instruments. All trademarks are the property of their respective owners.
9.4 Electrostatic Discharge Caution
This integrated circuit can be damaged by ESD. Texas Instruments recommends that all integrated circuits be handled with appropriate precautions. Failure to observe proper handling and installation procedures can cause damage. ESD damage can range from subtle performance degradation to complete device failure. Precision integrated circuits may be more susceptible to damage because very small parametric changes could cause the device not to meet its published specifications.
9.5 Glossary
TI Glossary This glossary lists and explains terms, acronyms, and definitions. NOTE: Page numbers for previous revisions may differ from page numbers in the current version. Changes from Revision AC (March 2024) to Revision AD (October 2024) Page Changes from Revision AB (November 2023) to Revision AC (March 2024) Page
- Added LM324BIRTER and LM2902BIRTER preview information to the Mechanical, Packaging, and Changes from Revision AA (September 2023) to Revision AB (November 2023) Page Changes from Revision Z (April 2023) to Revision AA (September 2023) Page www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 27 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
Changes from Revision Y (October 2022) to Revision Z (April 2023) Page Changes from Revision X (May 2022) to Revision Y (October 2022) Page Changes from Revision W (March 2015) to Revision X (May 2022) Page
- Updated package images in the Pin Configuration and Functions section to new format - no Changes from Revision V (January 2014) to Revision W (March 2014) Page Changes from Revision U (August 2010) to Revision V (January 2014) Page
11 Mechanical, Packaging, and Orderable Information
The following pages include mechanical packaging and orderable information. This information is the most current data available for the designated devices. This data is subject to change without notice and revision of this document. For browser based versions of this data sheet, refer to the left hand navigation. LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
28 Submit Document Feedback Copyright © 2024 Texas Instruments Incorporated
Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
11.1 Package Option Addendum
Device Status(1) Package Type Package Drawing Pins Package Qty Eco Plan(2) Lead/Ball Finish(6) MSL Peak Temp(3) Op Temp (°C) Device Marking(4) (5) LM324BIRTER PREVIEW WQFN RTE 16 5000 RoHS & Green NIPDAU Level-1-260C- UNLIM -40 to 125 LM324B LM2902BIRTER PREVIEW WQFN RTE 16 5000 RoHS & Green NIPDAU Level-1-260C- UNLIM -40 to 125 L2902B (1) The marketing status values are defined as follows: ACTIVE: Product device recommended for new designs. LIFEBUY: TI has announced that the device will be discontinued, and a lifetime-buy period is in effect. NRND: Not recommended for new designs. Device is in production to support existing customers, but TI does not recommend using this part in a new design. PRE_PROD Unannounced device, not in production, not available for mass market, nor on the web, samples not available. PREVIEW: Device has been announced but is not in production. Samples may or may not be available. OBSOLETE: TI has discontinued the production of the device. (2) Eco Plan - The planned eco-friendly classification: Pb-Free (RoHS), Pb-Free (RoHS Exempt), or Green (RoHS & no Sb/Br) - please check www.ti.com/productcontent for the latest availability information and additional product content details. TBD: The Pb-Free/Green conversion plan has not been defined. Pb-Free (RoHS): TI's terms "Lead-Free" or "Pb-Free" mean semiconductor products that are compatible with the current RoHS requirements for all 6 substances, including the requirement that lead not exceed 0.1% by weight in homogeneous materials. Where designed to be soldered at high temperatures, TI Pb-Free products are suitable for use in specified lead-free processes. Pb-Free (RoHS Exempt): This component has a RoHS exemption for either 1) lead-based flip-chip solder bumps used between the die and package, or 2) lead-based die adhesive used between the die and leadframe. The component is otherwise considered Pb-Free (RoHS compatible) as defined above. Green (RoHS & no Sb/Br): TI defines "Green" to mean Pb-Free (RoHS compatible), and free of Bromine (Br) and Antimony (Sb) based flame retardants (Br or Sb do not exceed 0.1% by weight in homogeneous material). (3) MSL, Peak Temp. -- The Moisture Sensitivity Level rating according to the JEDEC industry standard classifications, and peak solder temperature. (4) There may be additional marking, which relates to the logo, the lot trace code information, or the environmental category on the device. (5) Multiple Device markings will be inside parentheses. Only one Device Marking contained in parentheses and separated by a "~" will appear on a device. If a line is indented then it is a continuation of the previous line and the two combined represent the entire Device Marking for that device. (6) Lead/Ball Finish - Orderable Devices may have multiple material finish options. Finish options are separated by a vertical ruled line. Lead/Ball Finish values may wrap to two lines if the finish value exceeds the maximum column width. Important Information and Disclaimer: The information provided on this page represents TI's knowledge and belief as of the date that it is provided. TI bases its knowledge and belief on information provided by third parties, and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. TI has taken and continues to take reasonable steps to provide representative and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals. TI and TI suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release. In no event shall TI's liability arising out of such information exceed the total purchase price of the TI part(s) at issue in this document sold by TI to Customer on an annual basis. www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 29 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
11.2 Tape and Reel Information
Reel Width (W1) REEL DIMENSIONS W Dimension designed to accommodate the component length Dimension designed to accommodate the component thickness Overall width of the carrier tape Pitch between successive cavity centers Dimension designed to accommodate the component width TAPE DIMENSIONS B0 W A0Cavity QUADRANT ASSIGNMENTS FOR PIN 1 ORIENTATION IN TAPE Pocket Quadrants Sprocket Holes Q1 Q1Q2 Q2 Q3 Q3Q4 Q4 Reel Diameter User Direction of Feed Device Package Type Package Drawing Pins SPQ Reel Diameter (mm) Reel Width W1 (mm) (mm) (mm) (mm) (mm) W (mm) Pin1 Quadrant LM324BIRTER WQFN RTE 16 5000 330 12.4 3.3 3.3 1.1 8 12 Q2 LM2902BIRTER WQFN RTE 16 5000 330 12.4 3.3 3.3 1.1 8 12 Q2 LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
30 Submit Document Feedback Copyright © 2024 Texas Instruments Incorporated
Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
TAPE AND REEL BOX DIMENSIONS Width (mm) W L H Device Package Type Package Drawing Pins SPQ Length (mm) Width (mm) Height (mm) LM324BIRTER WQFN RTE 16 5000 367.0 367.0 35.0 LM2902BIRTER WQFN RTE 16 5000 367.0 367.0 35.0 www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 31 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
www.ti.com PACKAGE OUTLINE C 16X 0.300.18 1.680.07 16X 0.50.3
0.8 MAX
(DIM A) TYP0.050.00 12X 0.54X1.5 A 3.12.9B 3.12.9 WQFN - 0.8 mm max heightRTE0016CPLASTIC QUAD FLATPACK - NO LEAD 4219117/B 04/2022 SIDE WALL METAL THICKNESSDIM AOPTION 1OPTION 20.10.2 PIN 1 INDEX AREA 0.08SEATING PLANE 4 9 5 8 1613(OPTIONAL)PIN 1 ID 0.1CAB0.05 EXPOSEDTHERMAL PAD17SYMM SYMM SCALE 3.600 LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
32 Submit Document Feedback Copyright © 2024 Texas Instruments Incorporated
Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
www.ti.com EXAMPLE BOARD LAYOUT 0.07 MINALL AROUND0.07 MAXALL AROUND (0.2) TYPVIA12X (0.5) (2.8) (2.8) (0.58)TYP (1.68) (R0.05)ALL PAD CORNERS(0.58) TYP WQFN - 0.8 mm max heightRTE0016CPLASTIC QUAD FLATPACK - NO LEAD 4219117/B 04/2022 SYMM1 4 5 8 9 121316 SYMM LAND PATTERN EXAMPLEEXPOSED METAL SHOWNSCALE:20X SOLDER MASKOPENINGMETAL UNDERSOLDER MASKSOLDER MASKDEFINEDEXPOSEDMETALMETALSOLDER MASKOPENINGNON SOLDER MASKSOLDER MASK DETAILSDEFINED(PREFERRED)EXPOSEDMETAL www.ti.com LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 Copyright © 2024 Texas Instruments Incorporated Submit Document Feedback 33 Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
www.ti.com EXAMPLE STENCIL DESIGN 12X (0.5) (2.8) (2.8) (1.55) (R0.05) TYP WQFN - 0.8 mm max heightRTE0016CPLASTIC QUAD FLATPACK - NO LEAD 4219117/B 04/2022NOTES: (continued) 6. Laser cutting apertures with trapezoidal walls and rounded corners may offer better paste release. IPC-7525 may have alternate design recommendations. SYMMALL AROUNDMETAL BASED ON 0.125 mm THICK STENCILSOLDER PASTE EXAMPLE EXPOSED PAD 17:85% PRINTED SOLDER COVERAGE BY AREA UNDER PACKAGESCALE:25X SYMM1 5 8 1316 LM124, LM124A, LM224, LM224A, LM224K, LM224KA LM324, LM324A, LM324B, LM324BA, LM324K, LM324KA LM2902, LM2902B, LM2902BA, LM2902K, LM2902KV, LM2902KAV SLOS066AD – SEPTEMBER 1975 – REVISED OCTOBER 2024 www.ti.com
34 Submit Document Feedback Copyright © 2024 Texas Instruments Incorporated
Product Folder Links: LM124 LM124A LM224 LM224A LM224K LM224KA LM324 LM324A LM324B LM324BA LM324K LM324KA LM2902 LM2902B LM2902BA LM2902K LM2902KV LM2902KAV
www.ti.com 28-Aug-2024 PACKAGING INFORMATION Orderable Device Status (1) Package Type Package Drawing Pins Package Qty Eco Plan (2) Lead finish/ Ball material (6) MSL Peak Temp (3) Op Temp (°C) Device Marking (4/5) Samples 5962-7704301VCA ACTIVE CDIP J 14 25 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 5962-7704301VC A LM124JQMLV Samples 5962-9950403V9B ACTIVE XCEPT KGD 0 100 RoHS & Green Call TI N / A for Pkg Type -55 to 125 Samples 5962-9950403VCA ACTIVE CDIP J 14 25 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 5962-9950403VC A LM124AJQMLV Samples 77043012A ACTIVE LCCC FK 20 55 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 77043012A LM124FKB Samples 7704301CA ACTIVE CDIP J 14 25 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 7704301CA LM124JB Samples 7704301DA ACTIVE CFP W 14 25 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 7704301DA LM124WB Samples 77043022A ACTIVE LCCC FK 20 55 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 77043022A LM124AFKB Samples 7704302CA ACTIVE CDIP J 14 25 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 7704302CA LM124AJB Samples 7704302DA ACTIVE CFP W 14 25 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 7704302DA LM124AWB Samples JM38510/11005BCA ACTIVE CDIP J 14 25 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 JM38510 /11005BCA Samples LM124AFKB ACTIVE LCCC FK 20 55 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 77043022A LM124AFKB Samples LM124AJ ACTIVE CDIP J 14 25 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 LM124AJ Samples LM124AJB ACTIVE CDIP J 14 25 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 7704302CA LM124AJB Samples LM124AWB ACTIVE CFP W 14 25 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 7704302DA LM124AWB Samples LM124D OBSOLETE SOIC D 14 TBD Call TI Call TI -55 to 125 LM124 LM124DR ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM -55 to 125 LM124 Samples LM124DRG4 ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM -55 to 125 LM124 Samples Addendum-Page 1
www.ti.com 28-Aug-2024 Orderable Device Status (1) Package Type Package Drawing Pins Package Qty Eco Plan (2) Lead finish/ Ball material (6) MSL Peak Temp (3) Op Temp (°C) Device Marking (4/5) Samples LM124FKB ACTIVE LCCC FK 20 55 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 77043012A LM124FKB Samples LM124J ACTIVE CDIP J 14 25 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 LM124J Samples LM124JB ACTIVE CDIP J 14 25 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 7704301CA LM124JB Samples LM124W ACTIVE CFP W 14 25 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 LM124W Samples LM124WB ACTIVE CFP W 14 25 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 7704301DA LM124WB Samples LM224AD OBSOLETE SOIC D 14 TBD Call TI Call TI -25 to 85 LM224A LM224ADR ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU | SN Level-1-260C-UNLIM -25 to 85 LM224A Samples LM224ADRE4 ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM -25 to 85 LM224A Samples LM224ADRG4 ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM -25 to 85 LM224A Samples LM224AN ACTIVE PDIP N 14 25 RoHS & Green NIPDAU N / A for Pkg Type -25 to 85 LM224AN Samples LM224D OBSOLETE SOIC D 14 TBD Call TI Call TI -25 to 85 LM224 LM224DR ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU | SN Level-1-260C-UNLIM -25 to 85 LM224 Samples LM224DRG3 OBSOLETE SOIC D 14 TBD Call TI Call TI -25 to 85 LM224 LM224DRG4 ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM -25 to 85 LM224 Samples LM224KAD OBSOLETE SOIC D 14 TBD Call TI Call TI -25 to 85 LM224KA LM224KADR ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM -25 to 85 LM224KA Samples LM224KADRG4 ACTIVE SOIC D 14 2500 TBD Call TI Call TI -25 to 85 Samples LM224KAN ACTIVE PDIP N 14 25 RoHS & Green NIPDAU N / A for Pkg Type -25 to 85 LM224KAN Samples LM224KDR ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM -25 to 85 LM224K Samples LM224KN ACTIVE PDIP N 14 25 RoHS & Green NIPDAU N / A for Pkg Type -25 to 85 LM224KN Samples LM224N ACTIVE PDIP N 14 25 RoHS & Green NIPDAU N / A for Pkg Type -25 to 85 LM224N Samples Addendum-Page 2
www.ti.com 28-Aug-2024 Orderable Device Status (1) Package Type Package Drawing Pins Package Qty Eco Plan (2) Lead finish/ Ball material (6) MSL Peak Temp (3) Op Temp (°C) Device Marking (4/5) Samples LM224NE4 ACTIVE PDIP N 14 25 TBD Call TI Call TI -25 to 85 Samples LM2902BAIPWR ACTIVE TSSOP PW 14 3000 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 L2902BA Samples LM2902BIPWR ACTIVE TSSOP PW 14 3000 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 LM2902B Samples LM2902D OBSOLETE SOIC D 14 TBD Call TI Call TI -40 to 125 LM2902 LM2902DR ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU | SN Level-1-260C-UNLIM -40 to 125 LM2902 Samples LM2902DRE4 ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 LM2902 Samples LM2902DRG3 OBSOLETE SOIC D 14 TBD Call TI Call TI -40 to 125 LM2902 LM2902DRG4 ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 LM2902 Samples LM2902KAVQDR ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 L2902KA Samples LM2902KAVQDRG4 OBSOLETE SOIC D 14 TBD Call TI Call TI -40 to 125 L2902KA LM2902KAVQPWR ACTIVE TSSOP PW 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 L2902KA Samples LM2902KAVQPWRG4 ACTIVE TSSOP PW 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 L2902KA Samples LM2902KD OBSOLETE SOIC D 14 TBD Call TI Call TI -40 to 125 LM2902K LM2902KDB ACTIVE SSOP DB 14 80 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 L2902K Samples LM2902KDR ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 LM2902K Samples LM2902KN ACTIVE PDIP N 14 25 RoHS & Green NIPDAU N / A for Pkg Type -40 to 125 LM2902KN Samples LM2902KNSR ACTIVE SO NS 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 LM2902K Samples LM2902KNSRG4 ACTIVE SO NS 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 LM2902K Samples LM2902KPW OBSOLETE TSSOP PW 14 TBD Call TI Call TI -40 to 125 L2902K LM2902KPWR ACTIVE TSSOP PW 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 L2902K Samples LM2902KVQDR ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 L2902KV Samples LM2902KVQDRG4 OBSOLETE SOIC D 14 TBD Call TI Call TI -40 to 125 L2902KV LM2902KVQPWR ACTIVE TSSOP PW 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 L2902KV Samples Addendum-Page 3
www.ti.com 28-Aug-2024 Orderable Device Status (1) Package Type Package Drawing Pins Package Qty Eco Plan (2) Lead finish/ Ball material (6) MSL Peak Temp (3) Op Temp (°C) Device Marking (4/5) Samples LM2902KVQPWRG4 OBSOLETE TSSOP PW 14 TBD Call TI Call TI -40 to 125 L2902KV LM2902N ACTIVE PDIP N 14 25 RoHS & Green NIPDAU | SN N / A for Pkg Type -40 to 125 LM2902N Samples LM2902NE4 OBSOLETE PDIP N 14 TBD Call TI Call TI -40 to 125 LM2902N LM2902NSR ACTIVE SO NS 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 LM2902 Samples LM2902PW OBSOLETE TSSOP PW 14 TBD Call TI Call TI -40 to 125 L2902 LM2902PWR ACTIVE TSSOP PW 14 2000 RoHS & Green NIPDAU | SN Level-1-260C-UNLIM -40 to 125 L2902 Samples LM2902PWRE4 ACTIVE TSSOP PW 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 L2902 Samples LM2902PWRG3 OBSOLETE TSSOP PW 14 TBD Call TI Call TI -40 to 125 L2902 LM2902PWRG4 ACTIVE TSSOP PW 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 125 L2902 Samples LM324AD OBSOLETE SOIC D 14 TBD Call TI Call TI 0 to 70 LM324A LM324ADBR ACTIVE SSOP DB 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 LM324A Samples LM324ADR ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU | SN Level-1-260C-UNLIM 0 to 70 LM324A Samples LM324ADRG4 OBSOLETE SOIC D 14 TBD Call TI Call TI 0 to 70 LM324A LM324AN ACTIVE PDIP N 14 25 RoHS & Green NIPDAU N / A for Pkg Type 0 to 70 LM324AN Samples LM324ANSR ACTIVE SO NS 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 LM324A Samples LM324ANSRG4 ACTIVE SO NS 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 LM324A Samples LM324APW OBSOLETE TSSOP PW 14 TBD Call TI Call TI 0 to 70 L324A LM324APWR ACTIVE TSSOP PW 14 2000 RoHS & Green NIPDAU | SN Level-1-260C-UNLIM 0 to 70 L324A Samples LM324APWRG4 ACTIVE TSSOP PW 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 L324A Samples LM324BAIPWR ACTIVE TSSOP PW 14 3000 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 85 L324BA Samples LM324BIPWR ACTIVE TSSOP PW 14 3000 RoHS & Green NIPDAU Level-1-260C-UNLIM -40 to 85 LM324B Samples LM324D OBSOLETE SOIC D 14 TBD Call TI Call TI 0 to 70 LM324 LM324DR ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU | SN Level-1-260C-UNLIM 0 to 70 LM324 Samples Addendum-Page 4
www.ti.com 28-Aug-2024 Orderable Device Status (1) Package Type Package Drawing Pins Package Qty Eco Plan (2) Lead finish/ Ball material (6) MSL Peak Temp (3) Op Temp (°C) Device Marking (4/5) Samples LM324DRE4 ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 LM324 Samples LM324DRG3 OBSOLETE SOIC D 14 TBD Call TI Call TI 0 to 70 LM324 LM324DRG4 ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 LM324 Samples LM324KAD OBSOLETE SOIC D 14 TBD Call TI Call TI 0 to 70 LM324KA LM324KADR ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 LM324KA Samples LM324KADRG4 ACTIVE SOIC D 14 2500 TBD Call TI Call TI 0 to 70 Samples LM324KAN ACTIVE PDIP N 14 25 RoHS & Green NIPDAU N / A for Pkg Type 0 to 70 LM324KAN Samples LM324KANSR ACTIVE SO NS 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 LM324KA Samples LM324KAPW OBSOLETE TSSOP PW 14 TBD Call TI Call TI 0 to 70 L324KA LM324KAPWR ACTIVE TSSOP PW 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 L324KA Samples LM324KDR ACTIVE SOIC D 14 2500 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 LM324K Samples LM324KN ACTIVE PDIP N 14 25 RoHS & Green NIPDAU N / A for Pkg Type 0 to 70 LM324KN Samples LM324KNSR ACTIVE SO NS 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 LM324K Samples LM324KPW OBSOLETE TSSOP PW 14 TBD Call TI Call TI 0 to 70 L324K LM324KPWR ACTIVE TSSOP PW 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 L324K Samples LM324N ACTIVE PDIP N 14 25 RoHS & Green NIPDAU | SN N / A for Pkg Type 0 to 70 LM324N Samples LM324NE3 OBSOLETE PDIP N 14 TBD Call TI Call TI 0 to 70 LM324N LM324NE4 OBSOLETE PDIP N 14 TBD Call TI Call TI 0 to 70 LM324N LM324NSR ACTIVE SO NS 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 LM324 Samples LM324NSRE4 ACTIVE SO NS 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 LM324 Samples LM324NSRG4 ACTIVE SO NS 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 LM324 Samples LM324PW OBSOLETE TSSOP PW 14 TBD Call TI Call TI 0 to 70 L324 LM324PWR ACTIVE TSSOP PW 14 2000 RoHS & Green NIPDAU | SN Level-1-260C-UNLIM 0 to 70 L324 Samples Addendum-Page 5
www.ti.com 28-Aug-2024 Orderable Device Status (1) Package Type Package Drawing Pins Package Qty Eco Plan (2) Lead finish/ Ball material (6) MSL Peak Temp (3) Op Temp (°C) Device Marking (4/5) Samples LM324PWRE4 ACTIVE TSSOP PW 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 L324 Samples LM324PWRG3 OBSOLETE TSSOP PW 14 TBD Call TI Call TI 0 to 70 L324 LM324PWRG4 ACTIVE TSSOP PW 14 2000 RoHS & Green NIPDAU Level-1-260C-UNLIM 0 to 70 L324 Samples M38510/11005BCA ACTIVE CDIP J 14 25 Non-RoHS & Green SNPB N / A for Pkg Type -55 to 125 JM38510 /11005BCA Samples PLM2902BIDR ACTIVE SOIC D 14 3000 TBD Call TI Call TI -40 to 125 Samples PLM324BIDR ACTIVE SOIC D 14 3000 TBD Call TI Call TI -40 to 85 Samples (1) The marketing status values are defined as follows: ACTIVE: Product device recommended for new designs. LIFEBUY: TI has announced that the device will be discontinued, and a lifetime-buy period is in effect. NRND: Not recommended for new designs. Device is in production to support existing customers, but TI does not recommend using this part in a new design. PREVIEW: Device has been announced but is not in production. Samples may or may not be available. OBSOLETE: TI has discontinued the production of the device. (2) RoHS: TI defines "RoHS" to mean semiconductor products that are compliant with the current EU RoHS requirements for all 10 RoHS substances, including the requirement that RoHS substance do not exceed 0.1% by weight in homogeneous materials. Where designed to be soldered at high temperatures, "RoHS" products are suitable for use in specified lead-free processes. TI may reference these types of products as "Pb-Free". RoHS Exempt: TI defines "RoHS Exempt" to mean products that contain lead but are compliant with EU RoHS pursuant to a specific EU RoHS exemption. Green: TI defines "Green" to mean the content of Chlorine (Cl) and Bromine (Br) based flame retardants meet JS709B low halogen requirements of <=1000ppm threshold. Antimony trioxide based flame retardants must also meet the <=1000ppm threshold requirement. (3) MSL, Peak Temp. - The Moisture Sensitivity Level rating according to the JEDEC industry standard classifications, and peak solder temperature. (4) There may be additional marking, which relates to the logo, the lot trace code information, or the environmental category on the device. (5) Multiple Device Markings will be inside parentheses. Only one Device Marking contained in parentheses and separated by a "~" will appear on a device. If a line is indented then it is a continuation of the previous line and the two combined represent the entire Device Marking for that device. (6) Lead finish/Ball material - Orderable Devices may have multiple material finish options. Finish options are separated by a vertical ruled line. Lead finish/Ball material values may wrap to two lines if the finish value exceeds the maximum column width. Important Information and Disclaimer:The information provided on this page represents TI's knowledge and belief as of the date that it is provided. TI bases its knowledge and belief on information provided by third parties, and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. TI has taken and Addendum-Page 6
www.ti.com 28-Aug-2024 continues to take reasonable steps to provide representative and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals. TI and TI suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release. In no event shall TI's liability arising out of such information exceed the total purchase price of the TI part(s) at issue in this document sold by TI to Customer on an annual basis. OTHER QUALIFIED VERSIONS OF LM124, LM124-SP, LM124M, LM2902, LM2902B, LM2902BA :
- Catalog : LM124 , LM124
- Automotive : LM2902-Q1 , LM2902B-Q1 , LM2902BA-Q1
- Enhanced Product : LM2902-EP
- Military : LM124M , LM124M
- Space : LM124-SP , LM124-SP NOTE: Qualified Version Definitions:
- Catalog - TI's standard catalog product
- Automotive - Q100 devices qualified for high-reliability automotive applications targeting zero defects
- Enhanced Product - Supports Defense, Aerospace and Medical Applications
- Military - QML certified for Military and Defense Applications
- Space - Radiation tolerant, ceramic packaging and qualified for use in Space-based application Addendum-Page 7
PACKAGE MATERIALS INFORMATION www.ti.com 25-Sep-2024 TAPE AND REEL INFORMATION Reel Width (W1) REEL DIMENSIONS A0B0K0WDimension designed to accommodate the component lengthDimension designed to accommodate the component thicknessOverall width of the carrier tapePitch between successive cavity centersDimension designed to accommodate the component width TAPE DIMENSIONSK0 P1B0WA0Cavity QUADRANT ASSIGNMENTS FOR PIN 1 ORIENTATION IN TAPE Pocket QuadrantsSprocket HolesQ1Q1Q2Q2Q3Q3Q4Q4User Direction of Feed P1ReelDiameter *All dimensions are nominal Device Package Type Package Drawing Pins SPQ Reel Diameter (mm) Reel Width W1 (mm) (mm) (mm) (mm) (mm) W (mm) Pin1 Quadrant Pack Materials-Page 1
PACKAGE MATERIALS INFORMATION www.ti.com 25-Sep-2024 Device Package Type Package Drawing Pins SPQ Reel Diameter (mm) Reel Width W1 (mm) (mm) (mm) (mm) (mm) W (mm) Pin1 Quadrant Pack Materials-Page 2
PACKAGE MATERIALS INFORMATION www.ti.com 25-Sep-2024 TAPE AND REEL BOX DIMENSIONS Width (mm) W LH *All dimensions are nominal Device Package Type Package Drawing Pins SPQ Length (mm) Width (mm) Height (mm) LM124DR SOIC D 14 2500 350.0 350.0 43.0 LM224ADR SOIC D 14 2500 340.5 336.1 32.0 LM224ADR SOIC D 14 2500 356.0 356.0 35.0 LM224ADRG4 SOIC D 14 2500 340.5 336.1 32.0 LM224ADRG4 SOIC D 14 2500 356.0 356.0 35.0 LM224DR SOIC D 14 2500 356.0 356.0 35.0 LM224DRG4 SOIC D 14 2500 356.0 356.0 35.0 LM224KADR SOIC D 14 2500 356.0 356.0 35.0 LM224KDR SOIC D 14 2500 356.0 356.0 35.0 LM2902BAIPWR TSSOP PW 14 3000 356.0 356.0 35.0 LM2902BIPWR TSSOP PW 14 3000 356.0 356.0 35.0 LM2902DR SOIC D 14 2500 353.0 353.0 32.0 LM2902DRG4 SOIC D 14 2500 353.0 353.0 32.0 LM2902KAVQPWR TSSOP PW 14 2000 356.0 356.0 35.0 LM2902KAVQPWRG4 TSSOP PW 14 2000 367.0 367.0 35.0 LM2902KDR SOIC D 14 2500 356.0 356.0 35.0 LM2902KNSR SO NS 14 2000 356.0 356.0 35.0 LM2902KPWR TSSOP PW 14 2000 356.0 356.0 35.0 Pack Materials-Page 3
PACKAGE MATERIALS INFORMATION www.ti.com 25-Sep-2024 Device Package Type Package Drawing Pins SPQ Length (mm) Width (mm) Height (mm) LM2902KVQPWR TSSOP PW 14 2000 356.0 356.0 35.0 LM2902NSR SO NS 14 2000 356.0 356.0 35.0 LM2902PWR TSSOP PW 14 2000 356.0 356.0 35.0 LM2902PWRG4 TSSOP PW 14 2000 356.0 356.0 35.0 LM324ADBR SSOP DB 14 2000 356.0 356.0 35.0 LM324ADR SOIC D 14 2500 356.0 356.0 35.0 LM324ANSR SO NS 14 2000 356.0 356.0 35.0 LM324APWR TSSOP PW 14 2000 356.0 356.0 35.0 LM324APWRG4 TSSOP PW 14 2000 356.0 356.0 35.0 LM324BAIPWR TSSOP PW 14 3000 356.0 356.0 35.0 LM324BIPWR TSSOP PW 14 3000 356.0 356.0 35.0 LM324DR SOIC D 14 2500 356.0 356.0 35.0 LM324DR SOIC D 14 2500 353.0 353.0 32.0 LM324DRG4 SOIC D 14 2500 353.0 353.0 32.0 LM324DRG4 SOIC D 14 2500 356.0 356.0 35.0 LM324KADR SOIC D 14 2500 356.0 356.0 35.0 LM324KANSR SO NS 14 2000 356.0 356.0 35.0 LM324KAPWR TSSOP PW 14 2000 356.0 356.0 35.0 LM324KDR SOIC D 14 2500 356.0 356.0 35.0 LM324KNSR SO NS 14 2000 356.0 356.0 35.0 LM324KPWR TSSOP PW 14 2000 356.0 356.0 35.0 LM324NSR SO NS 14 2000 356.0 356.0 35.0 LM324PWR TSSOP PW 14 2000 356.0 356.0 35.0 LM324PWRG4 TSSOP PW 14 2000 356.0 356.0 35.0 Pack Materials-Page 4
PACKAGE MATERIALS INFORMATION www.ti.com 25-Sep-2024 TUBE L - Tube length T - Tube height W - Tube width B - Alignment groove width *All dimensions are nominal Device Package Name Package Type Pins SPQ L (mm) W (mm) T (µm) B (mm) 5962-9950403VCA J CDIP 14 25 506.98 15.24 13440 NA 77043012A FK LCCC 20 55 506.98 12.06 2030 NA 7704301DA W CFP 14 25 506.98 26.16 6220 NA 77043022A FK LCCC 20 55 506.98 12.06 2030 NA 7704302DA W CFP 14 25 506.98 26.16 6220 NA LM124AFKB FK LCCC 20 55 506.98 12.06 2030 NA LM124AWB W CFP 14 25 506.98 26.16 6220 NA LM124FKB FK LCCC 20 55 506.98 12.06 2030 NA LM124W W CFP 14 25 506.98 26.16 6220 NA LM124WB W CFP 14 25 506.98 26.16 6220 NA LM224AN N PDIP 14 25 506 13.97 11230 4.32 LM224KAN N PDIP 14 25 506 13.97 11230 4.32 LM224KN N PDIP 14 25 506 13.97 11230 4.32 LM224N N PDIP 14 25 506 13.97 11230 4.32 LM2902KDB DB SSOP 14 80 530 10.5 4000 4.1 LM2902KN N PDIP 14 25 506 13.97 11230 4.32 LM2902N N PDIP 14 25 506.1 9 600 5.4 LM2902N N PDIP 14 25 506 13.97 11230 4.32 LM324AN N PDIP 14 25 506 13.97 11230 4.32 LM324AN N PDIP 14 25 506 13.97 11230 4.32 LM324KAN N PDIP 14 25 506 13.97 11230 4.32 LM324KAN N PDIP 14 25 506 13.97 11230 4.32 LM324KN N PDIP 14 25 506 13.97 11230 4.32 LM324KN N PDIP 14 25 506 13.97 11230 4.32 LM324N N PDIP 14 25 506.1 9 600 5.4 LM324N N PDIP 14 25 506 13.97 11230 4.32 LM324N N PDIP 14 25 506 13.97 11230 4.32 LM324N N PDIP 14 25 506 13.97 11230 4.32 Pack Materials-Page 5
www.ti.com PACKAGE OUTLINE C 12X 0.65 3.9 14X 0.38 0.22 8.2
7.4 TYP
0.05 MIN
0.25 GAGE PLANE 0 -8
2 MAX
0.25 0.09 B 5.6 5.0 NOTE 4 A 6.5 5.9 NOTE 3 0.95 0.55 SSOP - 2 mm max heightDB0014A SMALL OUTLINE PACKAGE 4220762/A 05/2024
0.15 C A B
0.1 C NOTES: 1. All linear dimensions are in millimeters. Any dimensions in parenthesis are for reference only. Dimensioning and tolerancing per ASME Y14.5M. 2. This drawing is subject to change without notice. 3. This dimension does not include mold flash, protrusions, or gate burrs. Mold flash, protrusions, or gate burrs shall not exceed 0.15 mm per side. 4. Reference JEDEC registration MO-150. A 15 DETAIL A TYPICAL SCALE 2.000
www.ti.com EXAMPLE BOARD LAYOUT
0.05 MAX
14X (1.85) 14X (0.45) 12X (0.65) (7) (R0.05) TYP SSOP - 2 mm max heightDB0014A SMALL OUTLINE PACKAGE 4220762/A 05/2024 NOTES: (continued) 5. Publication IPC-7351 may have alternate designs. 6. Solder mask tolerances between and around signal pads can vary based on board fabrication site. LAND PATTERN EXAMPLE EXPOSED METAL SHOWN SCALE: 10X SYMM SYMM 7 8 15.000 METALSOLDER MASK OPENING METAL UNDER SOLDER MASK SOLDER MASK OPENING EXPOSED METALEXPOSED METAL SOLDER MASK DETAILS NON-SOLDER MASK DEFINED (PREFERRED) SOLDER MASK DEFINED
www.ti.com EXAMPLE STENCIL DESIGN 14X (1.85) 14X (0.45) 12X (0.65) (7) (R0.05) TYP SSOP - 2 mm max heightDB0014A SMALL OUTLINE PACKAGE 4220762/A 05/2024 NOTES: (continued) 7. Laser cutting apertures with trapezoidal walls and rounded corners may offer better paste release. IPC-7525 may have alternate design recommendations. 8. Board assembly site may have different recommendations for stencil design. SOLDER PASTE EXAMPLE BASED ON 0.125 mm THICK STENCIL SCALE: 10X SYMM SYMM 7 8
www.ti.com GENERIC PACKAGE VIEW This image is a representation of the package family, actual package may vary. Refer to the product data sheet for package details. LCCC - 2.03 mm max heightFK 20 LEADLESS CERAMIC CHIP CARRIER8.89 x 8.89, 1.27 mm pitch 4229370\\/A\\
www.ti.com PACKAGE OUTLINE C 14X .008-.014 [0.2-0.36]TYP -150 AT GAGE PLANE -.314 .308 -7.97 7.83 [ ] 14X -.026 .014 -1.65 1.15 [ ] .2 MAX TYP [5.08] .13 MIN TYP [3.3] TYP-.060 .015 -1.52 0.38 [ ] 4X .005 MIN [0.13] 12X .100 [2.54] .015 GAGE PLANE [0.38] A -.785 .754 -19.9419.15 [ ] B -.283 .245 -7.19 6.22 [ ] CDIP - 5.08 mm max heightJ0014A CERAMIC DUAL IN LINE PACKAGE 4214771/A 05/2017 NOTES: 1. All controlling linear dimensions are in inches. Dimensions in brackets are in millimeters. Any dimension in brackets or parenthesis are for reference only. Dimensioning and tolerancing per ASME Y14.5M. 2. This drawing is subject to change without notice. 3. This package is hermitically sealed with a ceramic lid using glass frit. 4. Index point is provided on cap for terminal identification only and on press ceramic glass frit seal only. 5. Falls within MIL-STD-1835 and GDIP1-T14. 7 8 PIN 1 ID (OPTIONAL) SCALE 0.900 SEATING PLANE .010 [0.25] C A B
www.ti.com EXAMPLE BOARD LAYOUT ALL AROUND [0.05] MAX .002 .002 MAX [0.05] ALL AROUND SOLDER MASK OPENING METAL (.063) [1.6] (R.002 ) TYP [0.05] 14X ( .039) [1] ( .063) [1.6] 12X (.100 ) [2.54] (.300 ) TYP [7.62] CDIP - 5.08 mm max heightJ0014A CERAMIC DUAL IN LINE PACKAGE 4214771/A 05/2017 LAND PATTERN EXAMPLE NON-SOLDER MASK DEFINED SCALE: 5X SEE DETAIL A SEE DETAIL B SYMM SYMM 7 8 DETAIL A SCALE: 15X SOLDER MASK OPENING METAL DETAIL B 13X, SCALE: 15X
www.ti.com PACKAGE OUTLINE C 12X 0.65 3.9 14X 0.30 0.17 6.6
6.2 TYP
1.2 MAX
0.15 0.05 0.25 GAGE PLANE 0 -8 4X (0 -12 ) B 4.5 4.3 NOTE 4 A 5.1 4.9 NOTE 3 0.75 0.50 (0.15) TYP TSSOP - 1.2 mm max heightPW0014A SMALL OUTLINE PACKAGE 4220202/B 12/2023
0.1 C A B
0.1 C NOTES: 1. All linear dimensions are in millimeters. Any dimensions in parenthesis are for reference only. Dimensioning and tolerancing per ASME Y14.5M. 2. This drawing is subject to change without notice. 3. This dimension does not include mold flash, protrusions, or gate burrs. Mold flash, protrusions, or gate burrs shall not exceed 0.15 mm per side. 4. This dimension does not include interlead flash. Interlead flash shall not exceed 0.25 mm per side. 5. Reference JEDEC registration MO-153. SEATING PLANE A 20 DETAIL A TYPICAL SCALE 2.500
www.ti.com EXAMPLE BOARD LAYOUT 14X (1.5) 14X (0.45) 12X (0.65) (5.8) (R0.05) TYP TSSOP - 1.2 mm max heightPW0014A SMALL OUTLINE PACKAGE 4220202/B 12/2023 NOTES: (continued) 6. Publication IPC-7351 may have alternate designs. 7. Solder mask tolerances between and around signal pads can vary based on board fabrication site. LAND PATTERN EXAMPLE EXPOSED METAL SHOWN SCALE: 10X SYMM SYMM 7 8 15.000 METALSOLDER MASK OPENING METAL UNDER SOLDER MASK SOLDER MASK OPENING EXPOSED METALEXPOSED METAL SOLDER MASK DETAILS NON-SOLDER MASK DEFINED (PREFERRED) SOLDER MASK DEFINED
www.ti.com EXAMPLE STENCIL DESIGN 14X (1.5) 14X (0.45) 12X (0.65) (5.8) (R0.05) TYP TSSOP - 1.2 mm max heightPW0014A SMALL OUTLINE PACKAGE 4220202/B 12/2023 NOTES: (continued) 8. Laser cutting apertures with trapezoidal walls and rounded corners may offer better paste release. IPC-7525 may have alternate design recommendations. 9. Board assembly site may have different recommendations for stencil design. SOLDER PASTE EXAMPLE BASED ON 0.125 mm THICK STENCIL SCALE: 10X SYMM SYMM 7 8
www.ti.com GENERIC PACKAGE VIEW This image is a representation of the package family, actual package may vary. Refer to the product data sheet for package details. WQFN - 0.8 mm max heightRTE 16 PLASTIC QUAD FLATPACK - NO LEAD3 x 3, 0.5 mm pitch 4225944/A
www.ti.com PACKAGE OUTLINE C TYP6.2 5.8
1.75 MAX
12X 1.27 14X 0.51 0.31 7.62 TYP0.25 0.13 0 - 8 0.25 0.10 0.25 GAGE PLANE 1.27 0.40 A NOTE 3 8.75 8.55 B NOTE 4 4.0 3.8 4220718/A 09/2016 SOIC - 1.75 mm max heightD0014A SMALL OUTLINE INTEGRATED CIRCUIT NOTES: 1. All linear dimensions are in millimeters. Dimensions in parenthesis are for reference only. Dimensioning and tolerancing per ASME Y14.5M. 2. This drawing is subject to change without notice. 3. This dimension does not include mold flash, protrusions, or gate burrs. Mold flash, protrusions, or gate burrs shall not exceed 0.15 mm, per side. 4. This dimension does not include interlead flash. Interlead flash shall not exceed 0.43 mm, per side. 5. Reference JEDEC registration MS-012, variation AB. 1 14
0.25 C A B
0.1 C SEE DETAIL A DETAIL A TYPICAL SCALE 1.800
www.ti.com EXAMPLE BOARD LAYOUT (5.4)
0.07 MAX
0.07 MIN
14X (1.55) 14X (0.6) 12X (1.27) (R0.05) TYP 4220718/A 09/2016 SOIC - 1.75 mm max heightD0014A SMALL OUTLINE INTEGRATED CIRCUIT SYMM SYMM LAND PATTERN EXAMPLE SCALE:8X 7 8 NOTES: (continued) 6. Publication IPC-7351 may have alternate designs. 7. Solder mask tolerances between and around signal pads can vary based on board fabrication site. METALSOLDER MASK OPENING NON SOLDER MASK DEFINED SOLDER MASK DETAILS SOLDER MASK OPENING METAL UNDER SOLDER MASK SOLDER MASK DEFINED
www.ti.com EXAMPLE STENCIL DESIGN (5.4) 12X (1.27) 14X (0.6) 14X (1.55) 4220718/A 09/2016 SOIC - 1.75 mm max heightD0014A SMALL OUTLINE INTEGRATED CIRCUIT NOTES: (continued) 8. Laser cutting apertures with trapezoidal walls and rounded corners may offer better paste release. IPC-7525 may have alternate design recommendations. 9. Board assembly site may have different recommendations for stencil design. SYMM SYMM 7 8 SOLDER PASTE EXAMPLE BASED ON 0.125 mm THICK STENCIL SCALE:8X
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