General-purpose Operational Amplifiers / Comparators NOW SERIES Operational Amplifiers LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX Description The Universal Standard family LM358 / 324, LM2904 / 2902 monolithic ICs integrate two independent op-amps and phase compensation capacitors on a single chip and feature high-gain, low power consumption, and an operating voltage range of 3[V] to 32[V] (single power supply.) No.11094ECT01 NOW SERIES Dual Quad LM358 family LM2904 family LM324 family LM2902 family LM358MX LM2904MX LM324MX LM324MTX LM2902MX Features 1) Operating temperature range Commercial Grade LM358 / 324 family : 0[] to + 70[] Extended Industrial Grade LM2904 / 2902 family : -40[] to +85[] 2) Wide operating supply voltage +3[V] to +32[V] (single supply) 1.5[V] to 16[V] (dual supply) 3) Low supply current 4) Common-mode input voltage range including ground 5) Differential input voltage range equal to maximum rated 5) Supply voltage 6) High large signal voltage gain 7) Wide output voltage range Pin Assignment OUTPUT 1 OUTPUT A 1 8 V INVERTING INPUT A 2 7 OUTPUT B NON-INVERTING INPUT A GND INPUT 1 INPUT 1 V 3 4 6 INVERTING INPUT B 5 NON-INVERTING INPUT B OUTPUT 4 13 INPUT 4 3 12 INPUT 4 4 11 GND 5 10 INPUT 3 6 9 INPUT 3 7 8 OUTPUT 3 2 + + INPUT 2 INPUT 2 + OUTPUT 2 SO package14 SO package8 LM358MX LM2904MX www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 14 1 LM324MX LM2902MX 1/17 + + TSSOP14 LM324MTX 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX Absolute Maximum Ratings (Ta=25[]) Parameter Symbol Supply Voltage V Operating Temperature Range Ratings LM358 family + Topr Storage Temperature Range Tstg Storage Temperature Range VICM Maximum junction Temperature Tjmax LM324 family LM2904 family LM2902 family Unit +32 +26 V 0 to +70 -40 to +85 -65 to +150 -0.3 to +32 -0.3 to +26 V +150 Electric Characteristics LM358,LM324 family (Unless otherwise specified, V=5[V]) Limits Parameter Input Offset Voltage (*1) Input Offset Voltage Drift Symbol Temperature range Input Bias Current (*1) Min. Typ. Max. Min. Typ. Max. 2 7 2 7 Full range 9 9 7 7 25 45 250 45 250 IIB Full range Input Offset Current (*1) IIO Input Common-mode Voltage Range VICR Supply Current ICC 40 500 40 500 5 50 5 50 150 150 10 10 25 V+-1.5 V+-1.5 Full range V+-2.0 V+-2.0 0.5 1.2 0.7 1.2 1 2 1.5 3 27 28 27 28 5 20 VOL RS=0[] VO=1.4[V] IIN (+)orIIN(-) VCM=0[V] 98 98 V+=30[V] (*8) 98 mA V+=5[V] RL= All Op Amps V+=30[V] RL= All Op Amps 99 V V+=30[V],RL=10[k] 5 20 mV RL=10[k], V+=5[V] V 99 V+=15[V] VO=1[V] to 11[V] RL2[k] 98 dB VCM=0[V] to V+-1.5[V] 98 dB V+=5[V] to 30[V] 98 120 dB f=1[kHz] to 20[kHz] input referred 101 40 mA V+=15[V],VO=2[V] VIN+=1[V],VIN-=0[V] 100 25 100 V/mV Common-mode Rejection ratio CMRR 25 65 85 65 85 Power Supply Rejection Ratio PSRR 25 65 100 65 100 Amplifier-to-Amplifier Coupling VO1/VO2 25 120 25 20 40 20 Sink 98 RS=0[] pA/ 25 Output Current (*2) RS=0[] VO=1.4[V] V+=5[V] to 30[V] IIN (+)-IIN (-) 25 Source Fig. No IIN (+)-IIN (-),VCM=0[V] AV Large Signal Voltage Gain Conditions nA Full range Full range V/ nA 25 VOH Output Voltage Swing mV Full range IIO Input Offset Current Drift Unit LM324 family 25 VIO VIO LM358 family Full range 10 20 10 20 25 10 20 10 20 Full range 2 8 2 8 Full range 12 50 12 40 99 mA V+=15[V],VO=2[V] VIN+=0[V],VIN-=1[V] A (*1) Absolute value (*2) Under high temperatures, please consider the power dissipation when selecting the output current. When output terminal is continuously shorted the output current reduces the internal temperature by flushing. www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 2/17 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX + LM2904,LM2902 family (Unless otherwise specified, V =+5[V]) Limits Parameter Input Offset Voltage (*3) Input Offset Voltage Drift Unit VIO Typ. Max. Min. Typ. Max. 2 7 2 7 Full range 10 10 7 7 Input Common-mode Voltage Range VICR 25 45 250 45 250 40 500 500 25 5 50 5 50 Output Voltage Swing ICC 45 200 45 200 10 10 25 V+-1.5 V+-1.5 + VOL VO=1.4[V] IIN(+)orIIN(-) VCM=0[V] Fig.No 98 - 98 IIN(+)-IIN(-),VCM=0[V] 98 IIN(+)-IIN(-) pA/ RS=0[] - V+=26[V] (*8) 98 mA V+=5[V] RL= All Op Amps V+=26[V], RL= All Op Amps 99 V V+=26[V], RL=10[k] 5 100 mV RL=10[k], V+=5[V] V -2.0 V+-2.0 0.5 1.2 0.7 1.2 1 2 1.5 3 23 24 23 24 5 100 Full range Full range RS=0[] VO=1.4[V] V+=5[V] to 26[V] nA VOH Conditions V/ RS=0[] nA Full range Full range Supply Current mV Full range IIO IIO Unit LM2902 family Min. IIB Input Offset Current Drift LM2904 family 25 VIO Input Bias Current (*3) Input Offset Current (*3) Temperature range V V+=15[V] V/mV VO=1[V] to 11[V] RL2[k] 99 AV 25 25 100 25 100 Common-mode Rejection Ratio CMRR 25 50 70 50 70 dB VCM=0[V]to V+=-1.5[V] 98 Power Supply Rejection Ratio PSRR 25 50 100 50 100 dB V+=5[V] to 26[V] 98 Amplifier-to-Amplifier Coupling VO1/VO2 25 120 120 dB f=1[kHz] to 20[kHz] Input referred 101 25 20 40 20 40 mA V+=15[V], VO=2[V] VIN+=1[V], VIN-=0[V] Large Signal Voltage Gain Source Output Current (*4) Sink Full range 10 20 10 20 25 10 20 10 20 Full range 2 8 2 8 Full range 12 50 12 50 98 99 mA V+=15[V], VO=2[V] VIN+=0[V], VIN-=1[V] A (*3) Absolute value (*4) Under high temperatures, please consider the power dissipation when selecting the output current. When the output terminal is continuously shorted the output current reduces the internal temperature by flushing. www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 3/17 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX Reference Data LM358 family POWER DISSIPATION Pd [mW] LM358 family BA2904 LM358 family family BA2904 LM358 family 800 600 25 LM358MX 32V 0 400 200 5V 70 3V 0 0 25 70 50 75 AMBIENT TEMPERATURE 100 [] Fig. 1 Derating Curve Fig. 2 Supply Current - Supply Voltage LM358 family Fig. 3 Supply Current - Ambient Temperature LM358 family LM358 family 0 0 25 70 25 70 Fig. 4 Maximum Output Voltage - Supply Voltage (RL=10[k] Fig. 5 Maximum Output Voltage - Ambient Temperature (VCC=5[V],RL=2[k]) Fig. 6 Output Source Current - Output Voltage (VCC=5[V]) LM358 family LM358 family LM358 family 15V 70 3V 5V 0 3V 5V 15V 25 Fig. 7 Output Source Current - Ambient Temperature (VOUT=0[V]) Fig. 8 Output Sink Current - Output Voltage (VCC=5[V]) Fig. 9 Output Sink Current - Ambient Temperature (VOUT=VCC) LM358 family LM358 family LM358 family 32V 25 0 0 5V 25 3V 70 70 Fig. 10 Low Level Sink Current - Supply Voltage (VOUT=0.2[V]) Fig. 11 Low Level Sink Current - Ambient Temperature (VOUT=0.2[V]) Fig. 12 Input Offset Voltage - Supply Voltage (Vicm=0[V], VOUT=1.4[V]) (*)The data above is ability value of sample, it is not guaranteed. www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 4/17 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX Reference Data LM358 family LM358 family LM358 family LM358 family 3V 5V 32V 25 0 32V 3V 5V 70 Fig. 13 Input Offset Voltage - Ambient Temperature (Vicm=0[V], VOUT=1.4[V]) Fig. 14 Input Bias Current - Supply Voltage (Vicm=0[V], VOUT=1.4[V]) Fig. 15 Input Bias Current - Ambient Temperature (Vicm=0[V],VOUT=1.4[V]) LM358 family LM358 family LM358 family 70 0 25 0 25 70 [V] Fig. 16 Input Bias Current - Ambient Temperature (VCC=30[V],Vicm=28[V],VOUT=1.4[V]) Fig. 17 Input Offset Voltage - Common Mode Input Voltage (VCC=5[V]) Fig. 18 Input Offset Current - Supply Voltage (Vicm=0[V],VOUT=1.4[V]) LM358 family LM358 family LM358 family 0 15V 25 3V 5V 5V 32V 70 Fig. 19 Input Offset Current - Ambient Temperature (Vicm=0[V],VOUT=1.4[V]) Fig. 20 Large Signal Voltage Gain - Supply Voltage (RL=2[k] LM358 family LM358 family 36V 0 Fig. 21 Large Signal Voltage Gain - Ambient Temperature (RL=2[k] LM358 family 32V 25 70 Fig. 22 Common Mode Rejection Ratio - Supply Voltage 5V 3V Fig. 23 Common Mode Rejection Ratio - Ambient Temperature Fig. 24 Power Supply Rejection Ratio - Ambient Temperature (*)The data above is ability value of sample, it is not guaranteed. www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 5/17 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX Reference Data LM324 family BA2904 family LM324 family LM324 family family BA2904 LM324 family 1000 POWER DISSIPATION Pd [mW] LM324MTX 800 LM324MX 32V 25 600 0 400 200 5V 70 0 0 25 70 50 75 3V 100 AMBIENT TEMPERATURE : [] Ta [] Fig. 25 Derating Curve Fig. 26 Supply Current - Supply Voltage LM324 family Fig. 27 Supply Current - Ambient Temperature LM324 family LM324 family 0 0 25 70 25 70 Fig. 28 Maximum Output Voltage - Supply Voltage (RL=10[k] Fig. 29 Maximum Output Voltage - Ambient Temperature (VCC=5[V],RL=2[k]) Fig. 30 Output Source Current - Output Voltage (VCC=5[V]) LM324 family LM324 family LM324 family 15V 70 3V 5V 0 5V 15V 3V 25 Fig. 31 Output Source Current - Ambient Temperature (VOUT=0[V]) Fig. 32 Output Sink Current - Output Voltage (VCC=5[V]) Fig. 33 Output Sink Current - Ambient Temperature (VOUT=VCC) LM324 family LM324 family LM324 family 32V 0 25 0 5V 25 3V 70 70 Fig. 34 Low Level Sink Current - Supply Voltage (VOUT=0.2[V]) Fig. 35 Low Level Sink Current - Ambient Temperature (VOUT=0.2[V]) Fig. 36 Input Offset Voltage - Supply Voltage (Vicm=0[V], VOUT=1.4[V]) (*)The data above is ability value of sample, it is not guaranteed. www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 6/17 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX Reference Data LM324 family LM324 family 3V 5V LM324 family LM324 family 25 0 32V 32V 3V 70 Fig. 37 Input Offset Voltage - Ambient Temperature (Vicm=0[V], VOUT=1.4[V]) Fig. 38 Input Bias Current - Supply Voltage (Vicm=0[V], VOUT=1.4[V]) 5V Fig. 39 Input Bias Current - Ambient Temperature (Vicm=0[V],VOUT=1.4[V]) LM324 family LM324 family LM324 family 0 70 25 0 25 70 [V] Fig. 40 Input Bias Current - Ambient Temperature (VCC=30[V],Vicm=28[V],VOUT=1.4[V]) Fig. 41 Input Offset Voltage - Common Mode Input Voltage (VCC=5[V]) Fig. 42 Input Offset Current - Supply Voltage (Vicm=0[V],VOUT=1.4[V]) LM324 family LM324 family LM324 family 25 0 15V 3V 5V 5V 32V 70 Fig. 43 Input Offset Current - Ambient Temperature (Vicm=0[V],VOUT=1.4[V]) Fig. 44 LM324 family LM324 family 36V 0 Fig. 45 Large Signal Voltage Gain - Supply Voltage (RL=2[k]) Large Signal Voltage Gain - Ambient Temperature (RL=2[k]) LM324 family 32V 25 5V 70 Fig. 46 Common Mode Rejection Ratio - Supply Voltage 3V Fig. 47 Common Mode Rejection Ratio - Ambient Temperature Fig. 48 Power Supply Rejection Ratio - Ambient Temperature (*)The data above is ability value of sample, it is not guaranteed. www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 7/17 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX Reference Data LM2904 family POWER DISSIPATION Pd [mW] LM2904 family BA2904 LM2904 family family BA2904 LM2904 family 800 600 25 LM2904MX 32V -40 400 200 5V 85 3V 0 0 25 50 75 85 AMBIENT TEMPERATURE 100 [] Fig. 49 Derating Curve Fig.50 Supply Current - Supply Voltage LM2904 family Fig. 51 Supply Current - Ambient Temperature LM2904 family LM2904 family -40 -40 25 85 25 85 Fig. 52 Maximum Output Voltage - Supply Voltage (RL=10[k] Fig. 53 Maximum Output Voltage - Ambient Temperature (VCC=5[V],RL=2[k]) Fig. 54 Output Source Current - Output Voltage (VCC=5[V]) LM2904 family LM2904 family LM2904 family 15V 85 3V 5V -40 5V 3V 15V 25 Fig. 55 Output Source Current - Ambient Temperature (VOUT=0[V]) Fig. 56 Output Sink Current - Output Voltage (VCC=5[V]) Fig. 57 Output Sink Current - Ambient Temperature (VOUT=VCC) LM2904 family LM2904 family LM2904 family 32V 25 -40 -40 25 5V 3V 85 85 Fig. 58 Low Level Sink Current - Supply Voltage (VOUT=0.2[V]) Fig. 59 Low Level Sink Current - Ambient Temperature (VOUT=0.2[V]) Fig. 60 Input Offset Voltage - Supply Voltage (Vicm=0[V], VOUT=1.4[V]) (*)The data above is ability value of sample, it is not guaranteed. www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 8/17 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX Reference Data LM2904 family LM2904 family LM2904 family LM2904 family 3V 5V 32V 25 -40 32V 3V 5V 85 Fig. 61 Input Offset Voltage - Ambient Temperature (Vicm=0[V], VOUT=1.4[V]) Fig. 62 Input Bias Current - Supply Voltage (Vicm=0[V], VOUT=1.4[V]) Fig. 63 Input Bias Current - Ambient Temperature (Vicm=0[V],VOUT=1.4[V]) LM2904 family LM2904 family LM2904 family 85 -40 -40 25 25 85 [V] Fig. 64 Input Bias Current - Ambient Temperature (VCC=30[V],Vicm=28[V],VOUT=1.4[V]) Fig. 65 Input Offset Voltage - Common Mode Input Voltage (VCC=5[V]) Fig. 66 Input Offset Current - Supply Voltage (Vicm=0[V],VOUT=1.4[V]) LM2904 family LM2904 family LM2904 family -40 15V 25 3V 5V 5V 32V 85 Fig. 67 Input Offset Current - Ambient Temperature (Vicm=0[V],VOUT=1.4[V]) Fig. 68 Large Signal Voltage Gain - Supply Voltage (RL=2[k] LM2904 family LM2904 family 36V -40 Fig. 69 Large Signal Voltage Gain - Ambient Temperature (RL=2[k] LM2904 family 32V 25 85 Fig. 70 Common Mode Rejection Ratio - Supply Voltage 5V 3V Fig. 71 Common Mode Rejection Ratio - Ambient Temperature Fig. 72 Power Supply Rejection Ratio - Ambient Temperature (*)The data above is ability value of sample, it is not guaranteed. www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 9/17 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX Reference Data LM2902 family POWER DISSIPATION Pd [mW] BA2904 family family LM2902 LM2902 family family BA2904 LM2902 family 1000 800 LM2902MX 32V 25 600 -40 400 5V 200 85 3V 0 0 25 70 75 50 100 AMBIENT TEMPERATURE[] [] Fig. 73 Derating Curve Fig. 74 Supply Current - Supply Voltage LM2902 family Fig. 75 Supply Current - Ambient Temperature LM2902 family LM2902 family -40 -40 25 85 25 85 Fig. 76 Maximum Output Voltage - Supply Voltage (RL=10[k] Fig. 77 Maximum Output Voltage - Ambient Temperature (VCC=5[V],RL=2[k]) Fig. 78 Output Source Current - Output Voltage (VCC=5[V]) LM2902 family LM2902 family LM2902 family 15V 85 3V 5V -40 5V 15V 3V 25 Fig. 79 Output Source Current - Ambient Temperature (VOUT=0[V]) Fig. 80 Output Sink Current - Output Voltage (VCC=5[V]) Fig. 81 Output Sink Current - Ambient Temperature (VOUT=VCC) LM2902 family LM2902 family LM2902 family 32V -40 25 -40 25 5V 3V 85 85 Fig. 82 Low Level Sink Current - Supply Voltage (VOUT=0.2[V]) Fig. 83 Low Level Sink Current - Ambient Temperature (VOUT=0.2[V]) Fig. 84 Input Offset Voltage - Supply Voltage (Vicm=0[V], VOUT=1.4[V]) (*)The data above is ability value of sample, it is not guaranteed. www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 10/17 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX Reference DataLM2902 family LM2902 family 3V 5V LM2902 family LM2902 family -40 25 32V 32V 3V 85 Fig. 85 Input Offset Voltage - Ambient Temperature (Vicm=0[V], VOUT=1.4[V]) Fig. 86 Input Bias Current - Supply Voltage (Vicm=0[V], VOUT=1.4[V]) 5V Fig. 87 Input Bias Current - Ambient Temperature (Vicm=0[V],VOUT=1.4[V]) LM2902 family LM2902 family LM2902 family -40 85 -40 25 25 85 [V] Fig. 88 Input Bias Current - Ambient Temperature (VCC=30[V],Vicm=28[V],VOUT=1.4[V]) Fig. 89 Input Offset Voltage - Common Mode Input Voltage (VCC=5[V]) Fig. 90 Input Offset Current - Supply Voltage (Vicm=0[V],VOUT=1.4[V]) LM2902 family LM2902 family LM2902 family 25 -40 15V 3V 5V 5V 32V 85 Fig. 91 Input Offset Current - Ambient Temperature (Vicm=0[V],VOUT=1.4[V]) Fig. 92 Large Signal Voltage Gain - Supply Voltage (RL=2[k] LM2902 family LM2902 family 36V -40 Fig. 93 Large Signal Voltage Gain - Ambient Temperature (RL=2[k] LM2902 family 32V 25 5V 85 Fig. 94 Common Mode Rejection Ratio - Supply Voltage 3V Fig. 95 Common Mode Rejection Ratio - Ambient Temperature Fig. 96 Power Supply Rejection Ratio - Ambient Temperature (*)The data above is ability value of sample, it is not guaranteed. www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 11/17 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX Circuit Diagram V + INPUTS + OUTPUT GND Fig.97 Circuit Diagram (each Op-Amp) Measurement Circuit 1 NULL Method measurement Condition + Parameter VF S1 S2 S3 V , GND, EK, VICR Unit : [V] LM2904/LM2902 family Calculation V+ GND EK VICR LM358/LM324 family V+ GND EK VICR Input Offset Voltage VF1 ON ON OFF 5 to 30 0 -1.4 0 5 to 30 0 -1.4 0 1 Input Offset Current VF2 OFF OFF OFF 0 -1.4 0 5 0 -1.4 0 2 VF3 OFF ON Input Bias Current VF4 ON OFF VF5 Large Signal Voltage Gain VF6 VF7 Common-mode Rejection Ratio VF8 VF9 Power supply Rejection Ratio VF10 OFF ON ON ON ON ON OFF ON ON OFF 5 5 0 -1.4 0 5 0 -1.4 0 5 0 -1.4 0 5 0 -1.4 0 15 0 -1.4 0 15 0 -1.4 0 15 0 -11.4 0 15 0 -11.4 0 5 0 -1.4 0 5 0 -1.4 0 5 0 -1.4 3.5 5 0 -1.4 3.5 5 0 -1.4 0 5 0 -1.4 0 30 0 -1.4 0 30 0 -1.4 0 Calculation 1.Input Offset Voltage (VIO) Vio 4 5 6 0.1[F] VF1 1+ Rf /Rs [V] Rf 50[k] 2.Input Offset Current (IIO) Iio 3 500[k] VF2 - VF1 [A] S1 Ri (1+ Rf / Rs) +15[V] 3.Input Bias Current (IIb) Rs VF4 - VF3 [A] Ib 2x Ri (1+ Rf / Rs) VICR 4. Large Signal Voltage Gain (Av) AV 20x Log V+ 0.1[F] VOUT EK 50[] 10[k] S3 Ri S2 Rf 5.Common-mode Rejection Ration (CMRR) CMRR 20x Log DUT 1000[pF] [dB] VF6 - VF5 3.5x (1+ Rf/ Rs) 500[k] 50[] 10[k] Rs 10x (1+ Rf /Rs) Ri GND RL -15[V] V VF 50[k] [dB] VF8-VF7 Fig.98 Measurement circuit1 (Each Op Amps) 6.Power supply rejection ratio (PSRR) V+x(1+Rf/Rs) PSRR 20xLog VF10 - VF9 [dB] V + =25V www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 12/17 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX Measurement Circuit2 Switch Condition SW 1 SW No. SW 2 SW 3 SW 4 SW 5 SW 6 SW 7 SW 8 SW 9 SW 10 SW 11 SW 12 SW 13 SW 14 SW 15 Supply Current OFF OFF OFF ON OFF OFF ON OFF OFF OFF OFF OFF OFF OFF OFF High Level Output Voltage OFF OFF ON OFF OFF OFF ON OFF OFF ON OFF OFF OFF ON OFF Low Level Output Voltage OFF OFF ON OFF OFF OFF ON OFF OFF OFF OFF OFF OFF ON OFF Output Source Current OFF OFF ON OFF OFF OFF ON OFF OFF OFF OFF OFF OFF OFF ON Output Sink Current OFF OFF ON OFF OFF OFF ON OFF OFF OFF OFF OFF OFF OFF ON Slew Rate OFF OFF OFF ON OFF OFF OFF OFF ON Gain Bandwidth Product OFF ON OFF OFF OFF ON Equivalent Input Noise Voltage ON OFF OFF OFF ON OFF ON OFF OFF OFF OFF ON OFF OFF OFF ON ON OFF OFF OFF OFF ON OFF OFF ON ON OFF OFF OFF OFF Input voltage SW4 3[V] SW5 R2 SW6 R3 V+ A 0.5[V] t Input waveform SW1 SW2 RS R1 SW3 SW10 SW11 SW12 SW13 SW14 SW15 SW7 SW8 Output voltage SW9 SR V / t 3[V] GND A VIN- VIN+ RL CL V V VOUT V t 0.5[V] t Output waveform Fig.100 Slew Rate Input Waveform Fig.99 Measurement Circuit2 (each Op-Amp) Measurement Circuit3 Amplifier To Amplifier Coupling R2=100[k] R2=100[k] V+ =+2.5[V] V+=+2.5[V] R1=1[k] R1=1[k] other CH CH1 VIN V R1//R2 GND=-2.5[V] VOUT1 =0.5 [Vrms] V R1//R2 GND=-2.5[V] VO1/VO2=20xlog VOUT2 100xVOUT1 VOUT2 Fig.101 Measurement Circuit3 www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 13/17 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX NOW SERIES LM2904/2902/358/324 family Description of Electrical Characteristics Described below are descriptions of the relevant electrical terms Please note that item names, symbols and their meanings may differ from those on another manufacturer's documents. 1.Absolute maximum ratings The absolute maximum ratings are values that should never be exceeded, since doing so may result in deterioration of electrical characteristics or damage to the part itself as well as peripheral components. 1.1 Power supply voltage (V+/GND) Expresses the maximum voltage that can be supplied between the positive and negative supply terminals without causing deterioration of the electrical characteristics or destruction of the internal circuitry. 1.2 Differential input voltage (VID) Indicates the maximum voltage that can be supplied between the non-inverting and inverting terminals without damaging the IC. 1.3 Input common-mode voltage range (VICR) Signifies the maximum voltage that can be supplied to non-inverting and inverting terminals without causing deterioration of the characteristics or damage to the IC itself. Normal operation is not guaranteed within the common-mode voltage range of the maximum ratings - use within the input common-mode voltage range of the electric characteristics instead. 1.4 Operating and storage temperature ranges (Topr,Tstg) The operating temperature range indicates the temperature range within which the IC can operate. The higher the ambient temperature, the lower the power consumption of the IC. The storage temperature range denotes the range of temperatures the IC can be stored under without causing excessive deterioration of the electrical characteristics. 1.5 Power dissipation (Pd) Indicates the power that can be consumed by a particular mounted board at ambient temperature (25). For packaged products, Pd is determined by the maximum junction temperature and the thermal resistance. 2. Electrical characteristics 2.1 Input offset voltage (VIO) Signifies the voltage difference between the non-inverting and inverting terminals. It can be thought of as the input voltage difference required for setting the output voltage to 0 V. 2.2 Input offset voltage drift (VIO/T) Denotes the ratio of the input offset voltage fluctuation to the ambient temperature fluctuation. 2.3 Input offset current (IIO) Indicates the difference of input bias current between the non-inverting and inverting terminals. 2.4 Input offset current drift (IIO/T) Signifies the ratio of the input offset current fluctuation to the ambient temperature fluctuation. 2.5 Input bias current (IIB) Denotes the current that flows into or out of the input terminal, it is defined by the average of the input bias current at the non-inverting terminal and the input bias current at the inverting terminal. 2.6 Circuit current (ICC) Indicates the current of the IC itself that flows under specified conditions and during no-load steady state. 2.7 High level output voltage/low level output voltage (VOH/VOL) Signifying the voltage range that can be output under specified load conditions, it is in general divided into high level output voltage and low level output voltage. High level output voltage indicates the upper limit of the output voltage, while low level output voltage the lower limit. 2.8 Large signal voltage gain (AV) The amplifying rate (gain) of the output voltage against the voltage difference between non-inverting and inverting terminals, it is (normally) the amplifying rate (gain) with respect to DC voltage. AV = (output voltage fluctuation) / (input offset fluctuation) 2.9 Input common-mode voltage range (VICR) Indicates the input voltage range under which the IC operates normally. 2.10 Common-mode rejection ratio (CMRR) Signifies the ratio of fluctuation of the input offset voltage when the in-phase input voltage is changed (DC fluctuation). CMRR = (change in input common-mode voltage) / (input offset fluctuation) 2.11 Power supply rejection ratio (PSRR) Denotes the ratio of fluctuation of the input offset voltage when supply voltage is changed (DC fluctuation). SVR = (change in power supply voltage) / (input offset fluctuation) 2.12 Output source current/ output sink current (IOH/IOL) The maximum current that can be output under specific output conditions, it is divided into output source current and output sink current. The output source current indicates the current flowing out of the IC, and the output sink current the current flowing into the IC. 2.13 Channel separation (CS) Expresses the amount of fluctuation of the input offset voltage or output voltage with respect to the change in the output voltage of a driven channel. 2.14 Slew rate (SR) Indicates the time fluctuation ratio of the output voltage when an input step signal is supplied. 2.15 Gain bandwidth product (GBW) The product of the specified signal frequency and the gain of the op-amp at such frequency, it gives the approximate value of the frequency where the gain of the op-amp is 1 (maximum frequency, and unity gain frequency). www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 14/17 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX NOW SERIES LM2904/2902/358/324 family Derating curves 1000 800 600 POWER DISSIPATION Pd [mW] POWER DISSIPATION Pd [mW] LM324MTX LM358MX LM2904MX 400 200 800 600 LM2902MX 400 LM324MX 200 0 0 0 25 50 70 75 AMBIENT TEMPERATURE 85 25 75 100 LM324MX/MTX, LM2902MX Power Dissipation Package 50 AMBIENT TEMPERATURE [] [] LM358MX, LM2904MX SO package8 (*8) 85 70 0 100 Power Dissipation Pd[W] ja [/W] Package Pd[W] ja [/W] 450 3.6 SO package14 610 4.9 TSSOP14 870 7.0 Fig.102 Derating Curves V+ Precautions 1) Unused circuits When there are unused circuits, it is recommended that they be connected as in Fig.103, setting the non-inverting input terminal to a potential within the in-phase input voltage range (VICR). 2) Input terminal voltage Applying GND + 32V to the input terminal is possible without causing deterioration of the electrical characteristics or destruction, irrespective of the supply voltage. However, this does not ensure connect to V icm normal circuit operation. Please note that the circuit operates normally only when the input voltage is within the common mode input voltage range of the electric characteristics. GND 3) Power supply (single / dual) The op-amp operates when the voltage supplied is between V+ and GND Therefore, the single supply op-mp can be used as a dual supply op-amp as well. Fig.103 Disable circuit example 4) Power dissipation (Pd) Using the unit in excess of the rated power dissipation may cause deterioration in electrical characteristics due to the rise in chip temperature, including reduced current capability. Therefore, please take into consideration the power dissipation (Pd) under actual operating conditions and apply a sufficient margin in thermal design. Refer to the thermal derating curves for more information. 5) Short-circuit between pins and erroneous mounting Incorrect mounting may damage the IC. In addition, the presence of foreign substances between the outputs, the output and the power supply, or the output and GND may result in IC destruction. 6) Operation in a strong electromagnetic field Operation in a strong electromagnetic field may cause malfunctions. 7) Radiation This IC is not designed to withstand radiation. 8) IC handing Applying mechanical stress to the IC by deflecting or bending the board may cause fluctuation of the electrical characteristics due to piezoelectric (piezo) effects. 9) IC operation The output stage of the IC is configured using Class C push-pull circuits. Therefore, when the load resistor is connected to the middle potential of V+ and GND, crossover distortion occurs at the changeover between discharging and charging of the output current. Connecting a resistor between the output terminal and GND, and increasing the bias current for Class A operation will suppress crossover distortion. 10) Board inspection Connecting a capacitor to a pin with low impedance may stress the IC. Therefore, discharging the capacitor after every process is recommended. In addition, when attaching and detaching the jig during the inspection phase, ensure that the power is turned OFF before inspection and removal. Furthermore, please take measures against ESD in the assembly process as well as during transportation and storage. 11) Output capacitor Discharge of the external output capacitor to V+ is possible via internal parasitic elements when V+ is shorted to GND, causing damage to the internal circuitry due to thermal stress. Therefore, when using this IC in circuits where oscillation due to output capacitive load does not occur, such as in voltage comparators, use an output capacitor with a capacitance less than 0.1F. www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 15/17 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX Ordering part number L M 3 5 8 M Family name LM358 LM324 LM2902 LM2904 X Package type M : S.O package MT : TSSOP Packaging and forming specification X: Embossed tape and reel S.O package8 4.90.2 (MAX 5.25 include BURR) 6 4 +6 -4 5 0.45Min. 7 3.90.2 6.00.3 8 1 2 3 Tape Embossed carrier tape Quantity 2500pcs Direction of feed ( reel on the left hand and you pull out the tape on the right hand The direction is the 1pin of product is at the upper left when you hold ) 4 0.545 0.20.1 0.175 1.3750.1 S 1.27 0.420.1 1pin 0.1 S Reel (Unit : mm) Direction of feed Order quantity needs to be multiple of the minimum quantity. S.O package14 8.650.1 (Max 9.0 include BURR) 0.65 0.15 1 1PIN MARK Tape Embossed carrier tape Quantity 2500pcs Direction of feed ( reel on the left hand and you pull out the tape on the right hand The direction is the 1pin of product is at the upper left when you hold ) 7 0.175 0.075 S +0.05 0.22 -0.03 1.375 0.075 1.65MAX 0.515 1.050.2 8 6.0 0.2 3.9 0.1 14 4 +6 -4 1.27 +0.05 0.42 -0.04 0.08 S 0.08 M 1pin Reel (Unit : mm) www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 16/17 Direction of feed Order quantity needs to be multiple of the minimum quantity. 2011.06 - Rev.C Technical Note LM358MX,LM2904MX,LM324MX,LM324MTX,LM2902MX TSSOP14 5.00.1 (Max 5.35 include BURR) 4 4 14 1 1.00.2 Tape Embossed carrier tape Quantity 2500pcs Direction of feed ( reel on the left hand and you pull out the tape on the right hand The direction is the 1pin of product is at the upper left when you hold ) 7 1PIN MARK +0.05 0.145 -0.03 0.10.05 S 1.00.05 1.2MAX 0.55 0.50.15 6.40.2 4.40.1 8 0.08 S 0.65 +0.05 0.245 -0.04 0.08 1pin M Reel (Unit : mm) www.rohm.com (c) 2011 ROHM Co., Ltd. All rights reserved. 17/17 Direction of feed Order quantity needs to be multiple of the minimum quantity. 2011.06 - Rev.C Datasheet Notice Precaution on using ROHM Products 1. Our Products are designed and manufactured for application in ordinary electronic equipments (such as AV equipment, OA equipment, telecommunication equipment, home electronic appliances, amusement equipment, etc.). If you (Note 1) , transport intend to use our Products in devices requiring extremely high reliability (such as medical equipment equipment, traffic equipment, aircraft/spacecraft, nuclear power controllers, fuel controllers, car equipment including car accessories, safety devices, etc.) and whose malfunction or failure may cause loss of human life, bodily injury or serious damage to property ("Specific Applications"), please consult with the ROHM sales representative in advance. Unless otherwise agreed in writing by ROHM in advance, ROHM shall not be in any way responsible or liable for any damages, expenses or losses incurred by you or third parties arising from the use of any ROHM's Products for Specific Applications. (Note1) Medical Equipment Classification of the Specific Applications JAPAN USA EU CHINA CLASS CLASSb CLASS CLASS CLASS CLASS 2. ROHM designs and manufactures its Products subject to strict quality control system. However, semiconductor products can fail or malfunction at a certain rate. Please be sure to implement, at your own responsibilities, adequate safety measures including but not limited to fail-safe design against the physical injury, damage to any property, which a failure or malfunction of our Products may cause. The following are examples of safety measures: [a] Installation of protection circuits or other protective devices to improve system safety [b] Installation of redundant circuits to reduce the impact of single or multiple circuit failure 3. Our Products are designed and manufactured for use under standard conditions and not under any special or extraordinary environments or conditions, as exemplified below. Accordingly, ROHM shall not be in any way responsible or liable for any damages, expenses or losses arising from the use of any ROHM's Products under any special or extraordinary environments or conditions. If you intend to use our Products under any special or extraordinary environments or conditions (as exemplified below), your independent verification and confirmation of product performance, reliability, etc, prior to use, must be necessary: [a] Use of our Products in any types of liquid, including water, oils, chemicals, and organic solvents [b] Use of our Products outdoors or in places where the Products are exposed to direct sunlight or dust [c] Use of our Products in places where the Products are exposed to sea wind or corrosive gases, including Cl2, H2S, NH3, SO2, and NO2 [d] Use of our Products in places where the Products are exposed to static electricity or electromagnetic waves [e] Use of our Products in proximity to heat-producing components, plastic cords, or other flammable items [f] Sealing or coating our Products with resin or other coating materials [g] Use of our Products without cleaning residue of flux (even if you use no-clean type fluxes, cleaning residue of flux is recommended); or Washing our Products by using water or water-soluble cleaning agents for cleaning residue after soldering [h] Use of the Products in places subject to dew condensation 4. The Products are not subject to radiation-proof design. 5. Please verify and confirm characteristics of the final or mounted products in using the Products. 6. In particular, if a transient load (a large amount of load applied in a short period of time, such as pulse. is applied, confirmation of performance characteristics after on-board mounting is strongly recommended. Avoid applying power exceeding normal rated power; exceeding the power rating under steady-state loading condition may negatively affect product performance and reliability. 7. De-rate Power Dissipation (Pd) depending on Ambient temperature (Ta). When used in sealed area, confirm the actual ambient temperature. 8. Confirm that operation temperature is within the specified range described in the product specification. 9. ROHM shall not be in any way responsible or liable for failure induced under deviant condition from what is defined in this document. Precaution for Mounting / Circuit board design 1. When a highly active halogenous (chlorine, bromine, etc.) flux is used, the residue of flux may negatively affect product performance and reliability. 2. In principle, the reflow soldering method must be used; if flow soldering method is preferred, please consult with the ROHM representative in advance. For details, please refer to ROHM Mounting specification Notice - GE (c) 2014 ROHM Co., Ltd. All rights reserved. Rev.002 Datasheet Precautions Regarding Application Examples and External Circuits 1. If change is made to the constant of an external circuit, please allow a sufficient margin considering variations of the characteristics of the Products and external components, including transient characteristics, as well as static characteristics. 2. You agree that application notes, reference designs, and associated data and information contained in this document are presented only as guidance for Products use. Therefore, in case you use such information, you are solely responsible for it and you must exercise your own independent verification and judgment in the use of such information contained in this document. ROHM shall not be in any way responsible or liable for any damages, expenses or losses incurred by you or third parties arising from the use of such information. Precaution for Electrostatic This Product is electrostatic sensitive product, which may be damaged due to electrostatic discharge. Please take proper caution in your manufacturing process and storage so that voltage exceeding the Products maximum rating will not be applied to Products. Please take special care under dry condition (e.g. Grounding of human body / equipment / solder iron, isolation from charged objects, setting of Ionizer, friction prevention and temperature / humidity control). Precaution for Storage / Transportation 1. Product performance and soldered connections may deteriorate if the Products are stored in the places where: [a] the Products are exposed to sea winds or corrosive gases, including Cl2, H2S, NH3, SO2, and NO2 [b] the temperature or humidity exceeds those recommended by ROHM [c] the Products are exposed to direct sunshine or condensation [d] the Products are exposed to high Electrostatic 2. Even under ROHM recommended storage condition, solderability of products out of recommended storage time period may be degraded. It is strongly recommended to confirm solderability before using Products of which storage time is exceeding the recommended storage time period. 3. Store / transport cartons in the correct direction, which is indicated on a carton with a symbol. Otherwise bent leads may occur due to excessive stress applied when dropping of a carton. 4. Use Products within the specified time after opening a humidity barrier bag. Baking is required before using Products of which storage time is exceeding the recommended storage time period. Precaution for Product Label QR code printed on ROHM Products label is for ROHM's internal use only. Precaution for Disposition When disposing Products please dispose them properly using an authorized industry waste company. Precaution for Foreign Exchange and Foreign Trade act Since our Products might fall under controlled goods prescribed by the applicable foreign exchange and foreign trade act, please consult with ROHM representative in case of export. Precaution Regarding Intellectual Property Rights 1. All information and data including but not limited to application example contained in this document is for reference only. ROHM does not warrant that foregoing information or data will not infringe any intellectual property rights or any other rights of any third party regarding such information or data. ROHM shall not be in any way responsible or liable for infringement of any intellectual property rights or other damages arising from use of such information or data.: 2. No license, expressly or implied, is granted hereby under any intellectual property rights or other rights of ROHM or any third parties with respect to the information contained in this document. Other Precaution 1. This document may not be reprinted or reproduced, in whole or in part, without prior written consent of ROHM. 2. The Products may not be disassembled, converted, modified, reproduced or otherwise changed without prior written consent of ROHM. 3. In no event shall you use in any way whatsoever the Products and the related technical information contained in the Products or this document for any military purposes, including but not limited to, the development of mass-destruction weapons. 4. The proper names of companies or products described in this document are trademarks or registered trademarks of ROHM, its affiliated companies or third parties. Notice - GE (c) 2014 ROHM Co., Ltd. All rights reserved. Rev.002 Datasheet General Precaution 1. Before you use our Pro ducts, you are requested to care fully read this document and fully understand its contents. ROHM shall n ot be in an y way responsible or liabl e for fa ilure, malfunction or acci dent arising from the use of a ny ROHM's Products against warning, caution or note contained in this document. 2. All information contained in this docume nt is current as of the issuing date and subj ect to change without any prior notice. Before purchasing or using ROHM's Products, please confirm the la test information with a ROHM sale s representative. 3. The information contained in this doc ument is provi ded on an "as is" basis and ROHM does not warrant that all information contained in this document is accurate an d/or error-free. ROHM shall not be in an y way responsible or liable for an y damages, expenses or losses incurred b y you or third parties resulting from inaccur acy or errors of or concerning such information. Notice - WE (c) 2014 ROHM Co., Ltd. All rights reserved. Rev.001 Mouser Electronics Authorized Distributor Click to View Pricing, Inventory, Delivery & Lifecycle Information: ROHM Semiconductor: LM2904MX LM358MX