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www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. BA2901S F/FV/KN BA2903 HFVM-C BA2901 F/FV/KN BA2903F/FV/FVM BA10339 F/FV BA10393F High-reliabillity Quad Dual Dual Dual Quad General-purpose Automotive Operation guaranteed up to +125 ℃ Operation guaranteed up to + 105 ℃ Operation guaranteed up to + 105 ℃ BA2903S F/FV/FVM Operation guaranteed up to +125 ℃ ROHM’s Selection Operational Amplifiers / Comparators Comparators: Ground Sense BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901S F/FV/KN,BA2901F/FV/KN
- Description General purpose BA10393/BA10339 family and high reliability BA2903S/BA2903/BA2901S/BA2901 family and automotive BA2903HFVM-C integrate two or fourindependent high gain voltage comparator. Somefeatures are the wide operating voltage that is 2 to 36[V](for BA10393, BA2903S, BA2903, BA2901S,BA2901 family, BA2903HFVM-C), 3 to 36[V](for BA10339 family) and low supply current. Therefore, this series is suitable for any application.
- Characteristics 1) Operable with a single power supply 5) Internal ESD protection 2) Wide operating supply voltage Human body model (HBM)±5000V +2.0[V]~+36.0[V] (single supply) (BA2903S/BA2903/BA2901S/BA2901 family, BA2903HFVM-C) ±1.0[V]~±18.0[V] (dual supply) 6) Gold PAD (BA2903S/BA2903/BA2901S/BA2901 family, BA2903HFVM-C)+3.0[V]~+36.0[V] (single supply) ±1.5[V]~±18.0[V] (dual supply) 7) Wide temperature range -40[℃]~+125[℃](BA2903/BA2901 family,BA2903HFVM-C) -40[℃]~+105[℃](BA2903S/BA2901S family) +2.0[V]~+36.0[V] (single supply) ±1.0[V]~±18.0[V] (dual supply) 3) Standard comparator pin-assignments -40[℃]~+85[℃](BA10393/BA10339 family) 4) Input and output are operable GND sense
- Pin Assignment No.10049EBT15 BA2903S/BA2901S family BA2903 /BA2901 family BA2903H BA10339 family BA10393 family SOP8 SSOP-B8 MSO P8 SOP14 SSOP-B14 VQF N 16 BA10393F BA2903F BA2903FV BA2903FVM BA10339F BA2901F BA10339FV BA2901FV BA2901KN 9+IN1 VC C NC +IN2-IN2 OUT1 OUT4 -IN3 -I N1 OUT2 OUT3 -IN4 +IN4 VEE NC +IN3 16 15 14 13 5 6 7 8 - + CH1 - + CH2 - + CH3 - + CH4 OUT1 -IN1 +IN1 VEE VCC OUT2 -IN2 +IN2 CH1 - + CH2 + - 6 OUT2 -IN2 +IN2 -IN1 CH1 - + VC C +IN1 OUT1 OUT4 +IN4 -IN4 -IN3 VE E +IN3 OUT3 CH4 + - - + CH3 - + CH2 -IN1 +IN1 -IN2 +IN2 ‐ + BA10393F BA2903SF BA2903F BA2903SFV BA2903FV BA2903SFVM BA2903FVM BA2903HFVM-C BA10339F BA2901SF BA2901F BA10339FV BA2901SFV BA2901FV BA2901SKN BA2901KN + - CH1 CH2 5 6 7 8 16 15 14 13 CH1 CH2 CH3 CH4
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved.
- Absolute Maximum Ratings (Ta=25[℃]) Parameter Symbol Rating UnitBA10393 family BA10339 family BA2903S family BA2901S family BA2903 family BA2901 family BA2903H family Supply Voltage VCC-VEE +36 V Differential Input Voltage (*1) Vid VCC-VEE 36 V Input Common-mode Voltage Range Vicm VEE~VCC (VEE-0.3) ~VEE+36 V Operating Temperature Range Topr -40~+85 -40 ~+105 -40 ~+125 ℃ Storage Temperature Range Tstg -55~+125 -55 ~+150 ℃ Maximum junction Temperature Tjmax +125 +150 ℃ Note Absolute maximum rating item indicate s the condition which must not be exceeded. Application if voltage in excess of absolute maximum rating or use out of absolute maximum rated temperature environment may cause deterioration of characteristics. (*1) The voltage difference between inverting input and non-inverting input is the differential input voltage. Then input terminal voltage is set to more than VEE.
- Electric Characteristics ○BA10393 family (Unless otherwise specified VCC=+5[V], VEE=0[V], Ta=25[℃]) Parameter Symbol Temperature range Guaranteed limit Unit Condition Min. Typ. Max. Input Offset Voltage Vio 25 ℃ - ±1 ±5 mV VOUT=1.4[V] Input Offset Current Iio 25 ℃ - ±5 ±50 nA VOUT=1.4[V] Input Bias Current (*2) Ib 25℃ - 50 250 nA VOUT=1.4[V] Input Common-mode Voltage Range Vicm 25 ℃ 0 - VCC-1.5 V - Large Signal Voltage Gain AV 25 ℃ 93 106 - dB RL=15[k Ω],VCC=15[V] Supply Current ICC 25 ℃ - 0.4 1 mA RL= ∞All Comparators Output Sink Current IOL 25 ℃ 6 16 - mA VIN-=1[V],VIN+=0[V],VOUT=1.5[V] Output Saturation Voltage VOL 25℃ - 250 400 mV VIN-=1[V],VIN+=0[V],IOL=4[mA] Output Leakage Current 1 Ileak1 25 ℃ - 0.1 - μA VIN-=0[V],VIN+=1[V],VOUT=5[V] Output Leakage Current 2 Ileak2 25 ℃ - 0.1 1 μA VIN-=0[V],VIN+=1[V],VOUT=36[V] Response Time Tre 25℃ - 1.3 - μs RL=5.1[k Ω],VRL=5[V] (*2)Current Direction : Since first input stage is composed with PNP transistor, input bias current flows out of IC. ○BA10339 family (Unless otherwise specified VCC=+5[V], VEE=0[V], Ta=25[℃]) Parameter Symbol Temperature range Guaranteed limit Unit Condition Min. Typ. Max. Input Offset Voltage Vio 25 ℃ - ±1 ±5 mV VOUT=1.4[V] Input Offset Current Iio 25 ℃ - ±5 ±50 nA VOUT=1.4[V] Input Bias Current (*2) Ib 25℃ - 50 250 nA VOUT=1.4[V] Input Common-mode Voltage Range Vicm 25 ℃ 0 - VCC-1.5 V - Large Signal Voltage Gain AV 25 ℃ - 106 - dB RL=15[kΩ ],VCC=15[V] Supply Current ICC 25 ℃ - 0.8 2 mA RL= ∞All Comparators Output Sink Current IOL 25 ℃ 6 16 - mA VIN-=1[V],VIN+=0[V],VOUT=1.5[V] Output Saturation Voltage VOL 25℃ - 250 400 mV VIN-=1[V],VIN+=0[V],IOL=4[mA] Output Leakage Current 1 Ileak1 25 ℃ - 0.1 - μA VIN-=0[V],VIN+=1[V],VOUT=5[V] Output Leakage Current 2 Ileak2 25 ℃ - - - μA VIN-=0[V],VIN+=1[V],VOUT=36[V] Response Time Tre 25℃ - 1.3 - μs RL=5.1[k Ω],VRL=5[V] (*2)Current Direction : Since first input stage is composed with PNP transistor, input bias current flows out of IC.
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. ○BA2903S/BA2903 family (Unless otherwise specified VCC=+5[V], VEE=0[V]) Parameter Symbol Temperature range Guaranteed limit Unit Condition Min. Typ. Max. Input Offset Voltage(*3) Vio 25℃ - 2 7 mV VOUT=1.4[V] Full range(*4) - - 15 VCC=5 ~36[V],VOUT=1.4[V] Input Offset Current(*3) Iio 25℃ - 5 50 nA VOUT=1.4[V] v - - 200 Input Bias Current(*3) Ib 25℃ - 50 250 nA VOUT=1.4[V] Full range(*4) - - 500 Input Common-mode Voltage Range Vicm 25℃ 0 - VCC-1.5 V - Full range(*4) - - - Large Signal Voltage Gain AV 25℃ 88 100 - dB VCC=15[V],VOUT=1.4~11.4[V] RL=15[kΩ],VRL=15[V] Full range(*4) - - - Supply Current ICC 25℃ - 0.6 1 mA VOUT=open Full range(*4) - - 2.5 VOUT=open,VCC=36[V] Output Sink Current(*4) IOL 25℃ 6 16 - mA VIN+=0[V ],VIN=1[V],VOL=1.5[V] Output Saturation Voltage (Low Level Output Voltage) VOL 25℃ - 150 400 mV VIN+=0[V],VIN-=1[V],IOL=4[mA] Full range(*4) - - 700 Output Leakage Current (High Level Output Current) Ileak 25℃ - 0.1 - nA VIN+=1[V],VIN-=0[V],VOH=5[V] Full range(*4) - - 1 μA VIN+=1[V],VIN-=0[V],VOH=36[V] Response Time Tre 25℃ - 1.3 - μs RL=5.1[kΩ],VRL=5[V] VIN=100[mVp-p],overdrive=5[mV] - 0.4 - RL=5.1[kΩ],VRL=5[V],VIN=TTL Logic Swing,VREF=1.4[V] Operable Frequency Fopr 25 ℃ - - - kHz VCC=5[V],RL=2[kΩ], VIN+=1.5[V] VIN-=5[Vp-p] (Duty 50% Rectangular Pulse) (*3) Absolute value (*4) BA2903S family :Full range -40[℃]~+105[℃] (*4) BA2903 family :Full range -40[℃]~+125[℃] ○BBA2901S/BA2901 family (Unless otherwise specified VCC=+5[V], VEE=0[V]) Parameter Symbol Temperature range Guaranteed limit Unit Condition Min. Typ. Max. Input Offset Voltage(*3) Vio 25℃ - 2 7 mV VOUT=1.4[V] Full range(*4) - - 15 VCC=5 ~36[V],VOUT=1.4[V] Input Offset Current(*3) Iio 25℃ - 5 50 nA VOUT=1.4[V] v - - 200 Input Bias Current(*3) Ib 25℃ - 50 250 nA VOUT=1.4[V] Full range(*4) - - 500 Input Common-mode Voltage Range Vicm 25℃ 0 - VCC-1.5 V - Full range(*4) - - - Large Signal Voltage Gain AV 25℃ 88 100 - dB VCC=15[V],VOUT=1.4~11.4[V] RL=15[kΩ],VRL=15[V] Full range(*4) - - - Supply Current ICC 25℃ - 0.8 2 mA VOUT=open Full range(*4) - - 2.5 VOUT=open,VCC=36[V] Output Sink Current(*4) IOL 25℃ 6 16 - mA VIN+=0[V ],VIN=1[V],VOL=1.5[V] Output Saturation Voltage (Low Level Output Voltage) VOL 25℃ - 150 400 mV VIN+=0[V],VIN-=1[V],IOL=4[mA] Full range(*4) - - 700 Output Leakage Current (High Level Output Current) Ileak 25℃ - 0.1 - nA VIN+=1[V],VIN-=0[V],VOH=5[V] Full range(*4) - - 1 μA VIN+=1[V],VIN-=0[V],VOH=36[V] Response Time Tre 25℃ - 1.3 - μs RL=5.1[kΩ],VRL=5[V] VIN=100[mVp-p],overdrive=5[mV] - 0.4 - RL=5.1[kΩ],VRL=5[V],VIN=TTL Logic Swing,VREF=1.4[V] Operable Frequency Fopr 25 ℃ - - - kHz VCC=5[V],RL=2[kΩ], VIN+=1.5[V] VIN-=5[Vp-p] (Duty 50% Rectangular Pulse) (*3) Absolute value (*4) BA2901S family :Full range -40[℃]~+105[℃] (*4) BA2901 family :Full range -40[℃]~+125[℃]
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. ○BA2903HFVM-C (Unless otherwise specified VCC=+5[V], VEE=0[V]) Parameter Symbol Temperature range Guaranteed limit Unit Condition Min. Typ. Max. Input Offset Voltage(*3) Vio 25℃ - 2 5 mV VOUT=1.4[V] Full range(*4) - - 15 VCC=5 ~36[V],VOUT=1.4[V] Input Offset Current(*3) Iio 25℃ - 5 50 nA VOUT=1.4[V] v - - 200 Input Bias Current(*3) Ib 25℃ - 50 250 nA VOUT=1.4[V] Full range(*4) - - 500 Input Common-mode Voltage Range Vicm 25℃ 0 - VCC-1.5 V - Full range(*4) 0 - VCC-2.0 Large Signal Voltage Gain AV 25℃ 88 100 - dB VCC=15[V],VOUT=1.4~11.4[V] RL=15[kΩ],VRL=15[V] Full range(*4) 74 - - Supply Current ICC 25℃ - 0.6 1 mA VOUT=open Full range(*4) - - 2.5 VOUT=open,VCC=36[V] Output Sink Current(*4) IOL 25℃ 6 16 - mA VIN+=0[V ],VIN=1[V],VOL=1.5[V] Output Saturation Voltage (Low Level Output Voltage) VOL 25℃ - 150 400 mV VIN+=0[V],VIN-=1[V],IOL=4[mA] Full range(*4) - - 700 Output Leakage Current (High Level Output Current) Ileak 25℃ - 0.1 - nA VIN+=1[V],VIN-=0[V],VOH=5[V] Full range(*4) - - 1 μA VIN+=1[V],VIN-=0[V],VOH=36[V] Response Time Tre 25℃ - - - μs RL=5.1[kΩ],VRL=5[V] VIN=100[mVp-p],overdrive=5[mV] - - - RL=5.1[kΩ],VRL=5[V],VIN=TTL Logic Swing,VREF=1.4[V] Operable Frequency Fopr 25 ℃ 100 - - kHz VCC=5[V],RL=2[kΩ], VIN+=1.5[V] VIN-=5[Vp-p] (Duty 50% Rectangular Pulse) (*3) Absolute value (*4) BA2903HFVM-C :Full range -40[℃]~+125[℃]
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. 0.2 0.4 0.6 0.8 -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [℃] SUPPLY CURRENT [mA]
- Example of electrical characteristics(Refarance Data) ○BA10393 family (*)The data above is ability value of sample, it is not guaranteed. -50 -40 -30 -20 -10 0 1 02 03 04 0 SUPPLY VOLTAGE [V] INPUT OFFSET CURRENT [nA] 100 120 140 160 01 0 2 0 3 0 4 0 SUPPLY VOLTAGE [V] INPUT BIAS CURRENT [nA] 100 120 140 160 -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [℃] INPUT BIAS CURRENT [nA] . Supply Current - Ambient Temperature 200 400 600 800 1000 0 2 55 07 5 1 0 0 1 2 5 AMBIENT TEMPERATURE [℃] . POWER DISSIPATION [mW] . 0.2 0.4 0.6 0.8 0 1 02 03 04 0 SUPPLY VOLTAGE [V] SUPPLY CURRENT [mA] . Input Offset Current – Supply Voltage Input Bias Current – Supply Voltage Supply Current - Supply Voltage 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 2.0 0 2 4 6 8 1 01 21 41 61 82 0 OUTPUT SINK CURRENT [mA] LOW LEVEL OUTPUT VOLTAGE [V] 100 200 300 400 500 - 5 0- 2 5 0 2 5 5 0 7 51 0 0 AMBIENT TEMPERATURE [℃] OUTPUT SATURATION VOLTAGE [mV] BA10393 family 36V 85℃ 25℃ -40℃ BA10393 familyBA10393 family -40℃ 25℃ 85℃ Input Bias Current – Ambient Temperature 36V BA10393 family -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [ INPUT OFFSET VOLTAGE [mV] Input Offset Voltage – Ambient Temperature 2V 5V 36V BA10393 family BA10393 family 36V 5V 0 1 02 03 04 0 SUPPLY VOLTAGE [V] INPUT OFFSET VOLTAGE [mV] Input Offset Voltage - Supply Voltage -40℃ 25℃ 85℃ BA10393 family Low Level Output Voltage – Output Sink Current (VCC=5[V]) BA10393 family -40℃ 25℃ 85℃ Output Saturation Voltage – Ambient Temperature (IOL=4[mA]) -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [℃] OUTPUT SINK CURRENT [mA] 36V BA10393 family Output Sink Current - Ambient Temperature (VOUT=1.5[V]) BA10393F BA10393 family BA10393 family 25℃ 85℃ -40℃ 100 200 300 400 500 0 1 02 03 04 0 SUPPLY VOLTAGE [V] OUTPUT SATURATION VOLTAGE [mV] BA10393 family -40℃ 25℃ 85℃ Output Saturation Voltage – Supply Voltage (IOL=4[mA]) Derating Curve F i g . 1 F i g . 2 F i g . 3 F i g . 4 F i g . 5 F i g . 6 F i g . 7 F i g . 8 F i g . 9 F i g . 1 0 F i g . 1 1 F i g . 1 2
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. -50 -40 -30 -20 -10 -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [ INPUT OFFSET CURRENT [nA] ○BA10393 family (*)The data above is ability value of sample, it is not guaranteed. 100 120 140 160 01 0 2 0 3 0 4 0 SUPPLY VOLTAGE [V] COMMON MODE REJECTION RATIO[dB] Common Mode Rejection Ratio – Supply Voltage BA10393 family -40℃ 25℃ 85℃ 100 110 120 130 140 -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [°C] POWER SUPPLY REJECTION RATIO [dB] BA10393 family Common Mode Rejection Ratio – Ambient Temperature 36V Input Offset Current – Ambient Temperature BA10393 family 36V 100 110 120 130 140 01 0 2 0 3 0 4 0 SUPPLY VOLTAGE [V] LARGE SIGNAL VOLTAGE GAIN [dB] . Large Signal Voltage Gain – Supply Voltage BA10393 family 25℃ 85℃ -40℃ 100 110 120 130 140 -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [°C] LARGE SIGNAL VOLTAGE GAIN [dB] . Large Signal Voltage Gain – Ambient Temperature BA10393 family 36V -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [°C] RESPONSE TIME (LOW to HIGH) [μs] . . Response Time (Low to High) - Ambient Temperature (VCC=5[V],VRL=5[V],RL=5.1[kΩ]) BA10393 family 5mV overdrive 20mV overdrive 100mV overdrive Response Time (High to Low) - Ambient Temperature (VCC=5[V],VRL=5[V]) 100 110 120 130 140 -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [°C] POWER SUPPLY REJECTION RATIO [dB] . BA10393 family Power Supply Rejection Ratio – Ambient Temperature -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [°C] RESPONSE TIME (HIGH to LOW) [μs] . 5mV overdrive 20mV overdrive 100mV overdrive BA10393 family F i g . 1 3 F i g . 1 4 F i g . 1 5 F i g . 1 6 F i g . 1 7 F i g . 1 8 F i g . 1 9 F i g . 2 0
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. ○BA10339 family (*)The data above is ability value of sample, it is not guaranteed. -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [℃] INPUT OFFSET VOLTAGE [mV] -50 -40 -30 -20 -10 0 1 02 03 04 0 SUPPLY VOLTAGE [V] INPUT OFFSET CURRENT [nA] -50 -25 0 25 50 75 100 AMBIENT TEMPERAUTRE [ INPUT BIAS CURRENT [nA] . 0.2 0.4 0.6 0.8 0 1 02 03 04 0 SUPPLY VOLTAGE [V] SUPPLY CURRENT [mA] . 0.2 0.4 0.6 0.8 -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [℃] SUPPLY CURRENT [mA] 01 0 2 0 3 0 4 0 SUPPLY VOLTAGE [V] INPUT OFFSET VOLTAGE [mV] 100 200 300 400 500 0 1 02 03 04 0 SUPPLY VOLTAGE [V] OUTPUT SATURATION VOLTAGE [mV] 100 200 300 400 500 - 5 0 - 2 50 2 55 07 5 1 0 0 AMBIENT TEMPERATURE [℃] OUTPUT SATURATION VOLTAGE [mV] 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 2.0 02468 1 0 1 2 1 4 1 6 1 8 2 0 OUTPUT SINK CURRENT [mA] LOW LEVEL OUTPUT VOLTAGE [V] 01 0 2 0 3 0 4 0 SUPPLY VOLTAGE [V] INPUT BIAS CURRENT [nA] -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [℃] OUTPUT SINK CURRENT [mA] Supply Current - Ambient Temperature Supply Current - Supply Voltage 85℃ 25℃ -40℃ BA10339 family 36V BA10339 family 36V BA10339 family BA10339 family 25℃ 85℃ -40℃ BA10339 family 36V -40℃ 25℃ 85℃ BA10339 family 200 400 600 800 1000 0 2 55 07 5 1 0 0 1 2 5 AMBIENT TEMPERATURE [℃] . POWER DISSIPATION [mW] . BA10339FV BA10339 family BA10339F BA10339 family -40℃ 25℃ 85℃ BA10339 family 36V BA10339 family -40℃ 25℃ 85℃ BA10339 family -40℃ 25℃ 85℃ 36V BA10339 family Input Offset Current – Supply Voltage Input Bias Current – Supply Voltage Input Bias Current – Ambient Temperature Input Offset Voltage – Ambient Temperature Input Offset Voltage - Supply Voltage Low Level Output Voltage – Output Sink Current(VCC=5[V]) Output Saturation Voltage – Ambient Temperature (IOL=4[mA]) Output Sink Current - Ambient Temperature (VOUT=1.5[V]) Output Saturation Voltage – Supply Voltage (IOL=4[mA]) Derating Curve F i g . 2 1 F i g . 2 2 F i g . 2 3 F i g . 2 4 F i g . 2 5 F i g . 2 6 F i g . 2 7 F i g . 2 8 F i g . 2 9 F i g . 3 0 F i g . 3 1 F i g . 3 2
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. ○BA10339 family (*)The data above is ability value of sample, it is not guaranteed. -50 -40 -30 -20 -10 -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [ INPUT OFFSET CURRENT [nA] BA10339 family 36V 100 110 120 130 140 01 0 2 0 3 0 4 0 SUPPLY VOLTAGE [V] LARGE SIGNAL VOLTAGE GAIN [dB] 25℃ 85℃ -40℃ -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [°C] RESPONSE TIME (LOW to HIGH) [μs] BA10339 family 5mV overdrive 20mV overdrive 100mV overdrive -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [°C] RESPONSE TIME (HIGH to LOW) [μs] BA10339 family 5mV overdrive 20mV overdrive 100mV overdrive 100 110 120 130 140 -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [°C] LARGE SIGNAL VOLTAGE GAIN [dB] BA10339 family 36V 100 120 140 160 01 0 2 0 3 0 4 0 SUPPLY VOLTAGE [V] COMMON MODE REJECTION RATIO [dB] BA10339 family -40℃ 25℃ 85℃ 100 125 150 - 5 0 - 2 50 2 55 07 5 1 0 0 AMBIENT TEMPERATURE [°C] LARGE SIGNAL VOLTAGE GAIN [dB] . BA10339 family 36V 100 110 120 130 140 -50 -25 0 25 50 75 100 AMBIENT TEMPERATURE [°C] POWER SUPPLY REJECTION RATIO [dB] BA10339 family BA10339 family Common Mode Rejection Ratio – Supply Voltage Large Signal Voltage Gain – Ambient Temperature Input Offset Current – Ambient Temperature Large Signal Voltage Gain – Supply Voltage Large Signal Voltage Gain – Ambient Temperature Response Time (Low to High) - Ambient Temperature (VCC=5[V],VRL=5[V],RL=5.1[kΩ]) Response Time (High to Low) - Ambient Temperature (VCC=5[V],VRL=5[V]) Power Supply Rejection Ratio – Ambient Temperature F i g . 3 3 F i g . 3 4 F i g . 3 5 F i g . 3 6 F i g . 3 7 F i g . 3 8 F i g . 3 9 F i g . 4 0
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] SUPPLY CURRENT [mA] 100 120 140 160 0 5 10 15 20 25 30 35 SUPPLY VOLTAGE [V] INPUT BIAS CURRENT [nA] 100 120 140 160 -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] INPUT BIAS CURRENT [nA] -50 -40 -30 -20 -10 0 1 02 03 04 0 SUPPLY VOLTAGE [V] INPUT OFFSET CURRENT[nA] 200 400 600 800 1000 0 25 50 75 100 125 150 AMBIENT TEMPERTURE [℃] . POWER DISSIPATION [mV] 100 150 200 0 1 02 03 04 0 SUPPLY VOLTAGE [V] MAXIMUM OUTPUT VOLTAGE [mV] 0 100 150 200 -50 -25 0 25 50 75 100 125 150 SUPPLY VOLTAGE [V] MAXIMUM OUTPUT VOLTAGE [mV] 0 0.2 0.4 0.6 0.8 1.2 1.4 1.6 1.8 0 2 4 6 8 1 01 21 41 61 82 0 OUTPUT SINK CURRENT [mA] OUTPUT VOLTAGE [V] 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 01 0 2 0 3 0 4 0 SUPPLY VOLTAGE [V] SUPPLY CURRENT [mA] -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] OUTPUT SINK CURRENT [mA] 01 0 2 0 3 0 4 0 SUPPLY VOLTAGE [V] INPUT OFFSET VOLTAGE [mV] -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] INPUT OFFSET VOLTAGE [mV] AMBIENT TEMPERATURE [℃] POWER DISSIPATION [mW] ○BA2903S/BA2903 family,BA2903HFVM-C (*)The data above is ability value of sample, it is not guaranteed. Supply Current - Ambient Temperature 25℃ 125℃ -40℃ 36V BA2903F BA2903FVM BA2903FV 36V -40℃ 25℃ 125℃ -40℃ 25℃ 125℃ 5V 36V 36V 5V -40℃ 25℃ 125℃ 125℃ 25℃ -40℃ BA2903S/BA2903 family,BA2903H 105℃ 105℃ 105℃ 105℃ 105℃ 36V BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903SFV BA2903SFVM 105 BA2903HFVM BA2903SF Input Offset Current – Supply Voltage Input Bias Current – Ambient Temperature Input Offset Voltage – Ambient Temperature Input Offset Voltage - Supply Voltage Output Voltage – Output Sink Current(VCC=5[V]) Maximum Output Voltage – Ambient Temperature(IOL=4[mA]) Output Sink Current - Ambient Temperature (VOUT=1.5[V]) Maximum Output Voltage – Supply Voltage(IOL=4[mA]) Supply Current - Supply Voltage Derating Curve AMBIENT TEMPERATURE[℃] -40℃ 25℃ 125℃ 105℃ 100 120 140 160 0 1 02 03 04 0 SUPPLY VOLTAGE [V] INPUT BIAS CURRENT [nA] BA2903S/BA2903 family,BA2903H -40℃ 25℃ 125℃ 105℃ INPUT OFFSET VOLTAGE [mV] INPUT BIAS CURRENT [nA] INPUT OFFSET CURRENT [nA] MAXIMUM OUTPUT VOLTAGE [mV] MAXIMUM OUTPUT VOLTAGE [mV] POWER DISSIPATION [mW] nput Bias Current – Supply Voltage F i g . 4 1 F i g . 4 2 F i g . 4 3 F i g . 4 4 F i g . 4 5 F i g . 4 6 F i g . 4 7 F i g . 4 8 F i g . 4 9 F i g . 5 0 F i g . 5 1 F i g . 5 2
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. 100 110 120 130 140 -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] LARGE SINGAL VOLTAGE GAIN [dB] 100 120 140 160 01 0 2 0 3 0 4 0 SUPPLY VOLTAGE [V] COMMON MODE REJECTION RATIO [dB] 100 110 120 130 140 0 1 02 03 04 0 SUPPLY VOLTAGE [V] LARGE SINGAL VOLTAGE GAIN [dB] 100 120 140 160 180 200 -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] POWER SUPPLY REJECTION RATIO [dB] -50 -40 -30 -20 -10 -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] INPUT OFFSET CURRENT [nA] 100 125 150 - 5 0 - 2 50 2 55 07 5 1 0 0 1 2 5 1 5 0 AMBIENT TEMPERATURE [℃] COMMON MODE REJECTION RATIO [dB] -6 - 1 012345 INPUT VOLTAGE [V] INPUT OFFSET VOLTAGE [mV] -100 -80 -60 -40 -20 0 OVER DRIVE VOLTAGE [V] RESPONSE TIME (LOW TO HIGH)[μs] -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] RRESPONSE TIME (LOW TO HIGH)[μs] 0 2 04 06 08 0 1 0 0 OVER DRIVE VOLTAGE [V] RESPONSE TIME (HIGH TO LOW)[μs] -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] RESPONSE TIME (HIGH TO LOW)[μs] ○BA2903S/BA2903 family,BA2903HFVM-C (*)The data above is ability value of sample, it is not guaranteed. Power Supply Rejection Ratio – Ambient Temperature Response Time (Low to High) – Ambient Temperature (VCC=5[V],VRL=5[V],RL=5.1[kΩ]) Input Offset Voltage – Input Voltage (VCC=5V) Response Time (High to Low)– Over Drive Voltage (VCC=5[V],VRL=5[V],RL=5.1[k Ω]) Response Time (High to Low) – Ambient Temperature (VCC=5[V],VRL=5[V],RL=5.1[kΩ]) Response Time (Low to High) – Over Drive Voltage (VCC=5[V],VRL=5[V],RL=5.1[kΩ]) -40℃ 25℃ 125℃ 36V 5V 36V 25℃ 125℃ -40℃ 15V 36V -40℃ 25℃ 125℃ 125℃ 25℃ -40℃ 125℃ 25℃ -40℃ 105℃ 105℃ 105℃ 105℃ 105℃ BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H BA2903S/BA2903 family,BA2903H Common Mode Rejection Ratio – Supply Voltage Common Mode Rejection Ratio – Ambient Temperature Input Offset Current – Ambient Temperature Large Signal Voltage Gain – Supply Voltage Large Signal Voltage Gain – Ambient Temperature 5mV overdrive 20mV overdrive 100mV overdrive 5mV overdrive 20mV overdrive 100mV overdrive OVER DRIVE VOLTAGE [mV] RESPONSE TIME (LOW TO HIGH)[μs] F i g . 5 3 F i g . 5 4 F i g . 5 5 F i g . 5 6 F i g . 5 7 F i g . 5 8 F i g . 5 9 F i g . 6 0 F i g . 6 1 F i g . 6 2 F i g . 6 3
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] SUPPLY CURRENT [mA] 100 120 140 160 0 5 10 15 20 25 30 35 SUPPLY VOLTAGE [V] INPUT BIAS CURRENT [nA] 100 120 140 160 -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] INPUT BIAS CURRENT [nA] -50 -40 -30 -20 -10 01 0 2 0 3 0 4 0 SUPPLY VOLTAGE [V] INPUT OFFSET CURRENT[nA] 100 150 200 01 0 2 0 3 0 4 0 SUPPLY VOLTAGE [V] MAXIMUM OUTPUT VOLTAGE [mV] 100 150 200 -50 -25 0 25 50 75 100 125 150 SUPPLY VOLTAGE [V] MAXIMUM OUTPUT VOLTAGE [mV] 0.2 0.4 0.6 0.8 1.2 1.4 1.6 1.8 0 2 4 6 8 1 01 21 41 61 82 0 OUTPUT SINK CURRENT [mA] OUTPUT VOLTAGE [V] -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] OUTPUT SINK CURRENT [mA] 0 1 02 03 04 0 SUPPLY VOLTAGE [V] INPUT OFFSET VOLTAGE [mV] -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] INPUT OFFSET VOLTAGE [mV] 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 2.0 0 1 02 03 04 0 SUPPLY VOLTAGE [V] SUPPLY CURRENT [mA] 200 400 600 800 1000 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] POWER DISSIPATION [mW] ○BA2901S/BA2901 family (*)The data above is ability value of sample, it is not guaranteed. Supply Current - Ambient Temperature 36V 36V -40℃ 25℃ 125℃ -40℃ 25℃ 125℃ 5V 36V 36V 5V -40℃ 25℃ 125℃ 125℃ 25℃ -40℃ -40℃ 25℃ 125℃ 2V BA2901S/BA2901 family 105℃ 105℃ 105℃ 105℃ 105℃ 36V BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family BA2901SFV BA2901S/BA2901 family BA2901FV BA2901KN BA2901F BA2901SKN BA2901SF 105 -40℃ 25℃ 125℃ 105℃ Input Offset Current – Supply VoltageInput Bias Current – Ambient Temperature Input Offset Voltage – Ambient Temperature Input Offset Voltage - Supply Voltage Output Voltage – Output Sink Current (VCC=5[V]) Output Sink Current - Ambient Temperature (VOUT=1.5[V]) Supply Current - Supply Voltage Derating Curve Maximum Output Voltage – Ambient Temperature (IOL=4[mA]) Maximum Output Voltage – Supply Voltage (IOL=4[mA]) AMBIENT TEMPERATURE[℃] -40℃ 25℃ 125℃ 105℃ 100 120 140 160 0 1 02 03 04 0 SUPPLY VOLTAGE [V] INPUT BIAS CURRENT [nA] BA2901S/BA2901 family -40℃ 25℃ 125℃ 105℃ SUPPLY VOLTAGE [V] INPUT BIAS CURRENT [nA] INPUT BIAS CURRENT [nA] Input Bias Current – Supply Voltage F i g . 6 4 F i g . 6 5 F i g . 6 6 F i g . 6 7 F i g . 6 8 F i g . 6 9 F i g . 7 0 F i g . 7 1 F i g . 7 2 F i g . 7 3 F i g . 7 4 F i g . 7 5
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. 100 110 120 130 140 -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] LARGE SINGAL VOLTAGE GAIN [dB] 100 120 140 160 0 1 02 03 04 0 SUPPLY VOLTAGE [V] COMMON MODE REJECTION RATIO [dB] 100 110 120 130 140 0 1 02 03 04 0 SUPPLY VOLTAGE [V] LARGE SINGAL VOLTAGE GAIN [dB] 100 120 140 160 180 200 -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] POWER SUPPLY REJECTION RATIO [dB] -50 -40 -30 -20 -10 -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] INPUT OFFSET CURRENT [nA] 100 125 150 - 5 0 - 2 50 2 55 07 5 1 0 0 1 2 5 1 5 0 AMBIENT TEMPERATURE [℃] COMMON MODE REJECTION RATIO [dB] -6 - 1 012345 INPUT VOLTAGE [V] INPUT OFFSET VOLTAGE [mV] - 1 0 0 - 8 0- 6 0- 4 0- 2 0 0 OVER DRIVE VOLTAGE [V] RESPONSE TIME (LOW TO HIGH)[μs] -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] RRESPONSE TIME (LOW TO HIGH)[μs] 0 20 40 60 80 100 OVER DRIVE VOLTAGE [V] RESPONSE TIME (HIGH TO LOW)[μs] -50 -25 0 25 50 75 100 125 150 AMBIENT TEMPERATURE [℃] RESPONSE TIME (HIGH TO LOW)[μs] ○BA2901S/BA2901 family (*)The data above is ability value of sample, it is not guaranteed. BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family BA2901S/BA2901 family -40℃ 25℃ 125℃ 36V 5V 36V 25℃ 125℃ -40℃ 15V 36V -40℃ 25℃ 125℃ 125℃ 25℃ -40℃ 125℃ 25℃ -40℃ 105℃ 105℃ 105℃ 105℃ 105℃ Common Mode Rejection Ratio – Supply Voltage Common Mode Rejection Ratio – Ambient Temperature Input Offset Current – Ambient Temperature Large Signal Voltage Gain – Supply Voltage Large Signal Voltage Gain – Ambient Temperature Power Supply Rejection Ratio – Ambient Temperature Response Time (Low to High) – Ambient Temperature (VCC=5[V],VRL=5[V],RL=5.1[kΩ]) Input Offset Voltage - Input Voltage (VCC=5V) Response Time (High to Low) – Over Drive Voltage (VCC=5[V],VRL=5[V],RL=5.1[k Ω]) Response Time (High to Low) – Ambient Temperature (VCC=5[V],VRL=5[V],RL=5.1[kΩ]) Response Time (Low to High) – Over Drive Voltage (VCC=5[V],VRL=5[V],RL=5.1[kΩ]) 5mV overdrive 20mV overdrive 100mV overdrive 5mV overdrive 20mV overdrive 100mV overdrive OVER DRIVE VOLTAGE [mV] RESPONSE TIME (LOW TO HIGH)[μs] F i g . 7 6 F i g . 7 7 F i g . 7 8 F i g . 7 9 F i g . 8 0 F i g . 8 1 F i g . 8 2 F i g . 8 3 F i g . 8 4 F i g . 8 5 F i g . 8 6
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. S30.1[μF] +15[V] VF -15[V] RL 0.01[μF] RK 500[kΩ] 500[kΩ] Rf Rs 50k EK NULL DUT Ri 10[kΩ] V S2Vicm VRL VCC VEE 50[Ω] Rs 50[Ω] Ri 10[kΩ] 0.1[μF] 50[kΩ] RK C1
- Circuit Diagram
- Test Circuit1 Null Method VCC,VEE,EK,Vicm Unit : [V], VRL=VCC Parameter VF S1 S2 S3 BA10393/BA10339 family BA2903S/BA2901S family BA2903/BA2901 family BA2903HFVM-C Calculation VCC GND EK Vicm VCC GND EK Vicm Input Offset Voltage VF1 ON ON ON 5 0 -1.4 0 5~36 0 -1.4 0 1 Input Offset Current VF2 OFF OFF ON 5 0 -1.4 0 5 0 -1.4 0 2 Input Bias Current VF3 OFF ON ON 5 0 -1.4 0 5 0 -1.4 0 3 VF4 ON OFF 5 0 -1.4 0 5 0 -1.4 0 Large Signal Voltage Gain VF5 ON ON ON 15 0 -1.4 0 15 0 -1.4 0 4 VF6 15 0 -11.4 0 15 0 -11.4 0 -Calculation- 1. Input Offset Voltage (Vio) 2. Input Offset Current (Iio) 3. Input Bias Current (Ib) 4. Large Signal Voltage Gain (AV) Fig.87 Circuit Diagram (one channel only ) [V] /RsRf1+ VF1 Vio / Rs)Rf(1+Ri VF1VF2 -Iio [A] Rf / Rs)(1+Ri2× VF3VF4 - Ib [A] Fig.88 Measurement circuit1 (one channel only) +IN -IN VOUT VCC VEE ΔEK×(1+Rf /Rs)Av = 20×Log |VF5-VF6| [dB]
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved.
- Measurement Circuit 2: Switch Condition SW No. SW SW SW SW SW SW SW Supply Current OFF OFF OFF OFF OFF OFF OFF Output Sink Current VOL=1.5[V] OFF ON ON OFF OFF OFF ON Saturation Voltage IOL=4[mA] OFF ON ON OFF ON ON OFF Output Leakage Current VOH=36[V] OFF ON ON OFF OFF OFF ON Response Time RL=5.1[kΩ],VRL=5[V] ON OFF ON ON OFF OFF OFF Fig.89 Measurement Circuit 2 (one channel only) Fig.90 Response Time SW1 SW2 SW3 SW5 SW6 SW7 AV A VI N - VI N + VR L RL VOL/VOH VCC VEE SW4 +100mV VIN Tre (LOW to HIGH) V CC/2 出力電圧波形VOUT VCC 入力電圧波形 overdrive voltage overdrive voltage -100mV VIN 出力電圧波形 Tre (HIGH to LOW) VC C /2 VOUT VCC 入力電圧波形Input wave Input wave Output wave Output wave
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved.
- 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 (VCC/VEE)
Expresses the maximum voltage that can be supplied between the positive and negative power 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 (Vicm)
Signifies the maximum voltage that can be supplied to non-inverting and inverting terminals without causing deterioration of the electrical characteristics or damage to the IC itself. Normal operation is not guaranteed within the input common-mode voltage range of the maximum ratings – use within the input common-mode voltage range of the electric characteristics instead.
1.4 Power dissipation (Pd)
Indicates the power that can be consumed by a particular mounted board at ambient temperature (25°C). For packaged products, Pd is determined by 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 0V.
2.2 Input offset current (Iio)
Indicates the difference of the input bias current between the non-inverting and inverting terminals.
2.3 Input bias current (Ib)
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.
2.4 Input common-mode voltage range (Vicm)
Indicates the input voltage range under which the IC operates normally.
2.5 Large signal voltage gain (AV)
The amplifying rate (gain) of the output voltage against the voltage difference between the non-inverting and inverting terminals, it is (normally) the amplifying rate (gain) with respect to DC voltage. AVD = (output voltage fluctuation) / (input offset fluctuation)
2.6 Circuit current (ICC)
Indicates the current of the IC itself that flows under specific conditions and during no-load steady state.
2.7 Output sink current (IOL)
Denotes the maximum current that can be output under specific output conditions.
2.8 Output saturation voltage low level output voltage (VOL)
Signifies the voltage range that can be output under specific output conditions.
2.9 Output leakage current (ILeak)
Indicates the current that flows into the IC under specific input and output conditions.
2.10 Response time (tre)
The interval between the application of input and output conditions.
2.11 Common-mode rejection ratio (CMRR)
Denotes the ratio of fluctuation of the input offset voltage when the in-phase input voltage is changed (DC fluctuation). CMRR = (change of input common-mode voltage) / (input offset fluctuation)
2.12 Power supply rejection ratio (PSRR)
Signifies the ratio of fluctuation of the input offset voltage when the supply voltage is changed (DC fluctuation). PSRR = (change in power supply voltage) / (input offset fluctuation)
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved.
- Derating curves Power dissipation(total loss) indicates the power that can be consumed by IC at Ta=25℃(normal temperature).IC is heated when it consumed power, and the temperature of IC chip becomes higher than ambient temperature.The temperature that can be accepted by IC chip depends on circuit configuration, manufacturing process, and consumable power is limited. Power dissipation is determined by the temperature allowed in IC chip(maximum junction temperature) and thermal resistance of package(heat dissipation capability). The maximum junction temperature is typically equal to the maximum value in the storage temperature range. Heat generated by consumed power of IC radiates from the mold resin or lead frame of the package. The parameter which indicatesthis heat dissipation capability(hardness of heat release)is called thermal resistance, represented by the symbol θja[℃/W].The temperature of IC inside the package can be estimated by this thermal resistance. Fig.91(a) shows the model of thermal resistance of the package. Thermal resistance θja, ambient temperature Ta, junction temperature Tj, and power dissipation Pd can be calculated by the equation below: Derating curve in Fig.91(b) indicates power that can be consumed by IC with reference to ambient temperature. Power that can be consumed by IC begins to attenuate at certain ambient temperature. This gradient iis determined by thermal resistance θja. Thermal resistance θja depends on chip size, power consumption, package,ambient temperature, package condition, wind velocity, etc even when the same of package is used. Thermal reduction curve indicates a reference value measured at a specified condition. Fig.92(a)~(d) show a derating curve for an example of BA10393, BA10339, BA2903S, BA2903, BA2903HFVM-C,BA2901S, BA2901. When using the unit above Ta=25[℃], subtract the value above per degree[℃]. Permissible dissipation is the value when glass epoxy board 70[mm]×70[mm]×1.6[mm](cooper foil area below 3[%]) is mounted. Fig.92 Derating curve (a) Thermal resistance (b) Derating curve Fig.91 Thermal resistance and derating curve 0 50 75 100 125 15025 Pd (max) LSIの消費電力 [W] θ' ja2 θ' ja1 Tj ' (max) θja2 < θja1 周囲温度 Ta [℃] θ ja2 θ ja1 Tj (max) Power dissipation of LSI Ambient temperature 周囲温度 Ta [℃] チップ表面温度 Tj [℃] 消費電力 P [W] θja = ( Tj ーTa ) / Pd [℃/W] Chip surface temperature Power dissipation Ambient temperature 200 400 600 800 1000 0 25 50 75 100 125 200 400 600 800 1000 0 25 50 75 100 125 周囲温度 Ta [°C] 許容損失 Pd [mW] 200 400 600 800 1000 0 25 50 75 100 125 150 周囲温度 Ta [°C] 許容損失 Pd [mW] 200 400 600 800 1000 0 25 50 75 100 125 150 周囲温度 Ta [°C] 許容損失 Pd [mW] (a)BA10393 family (b)BA10339 family (c)BA2903 family (d)BA2901 family 620mW(★5) 700mW(★6) 490mW(★7) 780mW(★8) 690mW(★9) 590mW(★10) 870mW(★11) 660mW(★12) 610mW(★13) BA10393F BA10339FV BA10339F BA2903FV BA2903FVM BA2903HFVM-C BA2901FV BA2901F BA2903SFV BA2903SF BA2903SFVM BA2901SFV BA2901SKN BA2901SF 105 105 POWER DISSIPATION Pd [mW] POWER DISSIPATION Pd [mW] POWER DISSIPATION Pd [mW] POWER DISSIPATION Pd [mW] Ambient temperature :Ta [℃] Ambient temperature :Ta [℃] Ambient temperature :Ta [℃]Ambient temperature :Ta [℃]
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- Precautions 1) Unused circuits When there are unused circuits it is recommended that they beconnected as in Fig.93, setting the non-inverting input terminal to a potential within the in-phase input voltage range (VICR). 2) Input terminal voltage (BA2903S/BA2903/BA2901S/BA2901 family, BA2903HFVM-C)Applying VEE + 36Vto the input terminal is possible without causing deterioration of the electrical characteristics or destruction, irrespective of the supply voltage. However,this does not ensure 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. 3) Power supply (single / dual) The op-amp operates when the specified voltage supplied is between VCC and VEE. Therefore, the single supply op-amp can be used as a dual supply op-amp as well. 4) Power dissipation Pd Using the unit in excess of the rated power dissipation may cause deterioration in electrical characteristics due to a 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 particles between the outputs, the output and the power supply, or the output and GND may result in IC destruction. 6) Terminal short-circuits When the output and VCC terminals are shorted, excessive output current may flow, resulting in undue heat generation and, subsequently, destruction. 7) Operation in a strong electromagnetic field Operation in a strong electromagnetic field may cause malfunctions. 8) Radiation This IC is not designed to withstand radiation. 9) IC handing Applying mechanical stress to the IC by deflecting or bending the board may cause fluctuations in the electrical characteristics due to piezoelectric (piezo) effects. 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. 図1 未使用回路の処理例 VCC VEE 同相入力電圧 範囲内の電位 OPEN Fig.93 Disable circuit example Please keep this potencial in Vicm
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- Ordering part number B A 2 9 0 3 F V - E 2 Part No. Part No. 10393,1033 2903S,2903 2901S,2901 2903H Package F: SOP8 SOP14 FV: SSOP-B8 SSOP-B14 FVM: MSOP8 KN:VQFN16 Packaging and forming specification E2: Embossed tape and reel (SOP8/SOP14/SSOP-B8/ SSOP-B14/VQFN16) TR: Embossed tape and reel (MSOP8) (Unit : mm) SOP8 0.9±0.15 0.3MIN 4°+6° −4° 0.17 +0.1 -0.05 0.595 4 3 5.0±0.2 6.2±0.3 4.4±0.2 (MAX 5.35 include BURR) 1.27 0.11 0.42±0.1 1.5±0.1 S ∗ Order quantity needs to be multiple of the minimum quantity. <Tape and Reel information> Embossed carrier tapeTape Quantity Direction of feed The direction is the 1pin of product is at the upper left when you hold reel on the left hand and you pull out the tape on the right hand 2500pcs Direction of feed Reel 1pin (Unit : mm) SOP14 1.27 0.11 0.3MIN 8.7±0.2 0.4±0.1 0.15±0.1 1.5±0.1 6.2±0.3 4.4±0.2 (MAX 9.05 include BURR) 0.1 ∗ Order quantity needs to be multiple of the minimum quantity. <Tape and Reel information> Embossed carrier tapeTape Quantity Direction of feed The direction is the 1pin of product is at the upper left when you hold reel on the left hand and you pull out the tape on the right hand 2500pcs Direction of feed Reel 1pin (Unit : mm) SSOP-B8 0.08 M 1234 5 6 7 8 0.1 +0.06 -0.040.22 0.3MIN 0.65(0.52) 3.0±0.2 0.15±0.1 6.4±0.3 1.15±0.1 4.4±0.2 (MAX 3.35 include BURR) S 0.1 ∗ Order quantity needs to be multiple of the minimum quantity. <Tape and Reel information> Embossed carrier tapeTape Quantity Direction of feed The direction is the 1pin of product is at the upper left when you hold reel on the left hand and you pull out the tape on the right hand 2500pcs Direction of feed Reel 1pin
BA10393F,BA10339F/FV,BA2903SF/FV/FVM,BA2903F/FV/FVM, BA2903HFVM-C,BA2901SF/FV/KN,BA2901F/FV/KN www.rohm.com 2010.05 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. (Unit : mm) MSOP8 0.08 S S 4.0±0.2 2.8±0.1 2.9±0.1 0.475 5 7 (MAX 3.25 include BURR) 1PIN MARK 0.9MAX 0.75±0.05 0.65 0.08±0.05 0.22 +0.05 –0.04 0.6±0.2 0.29±0.15 0.145 +0.05 –0.03 4°+6° −4° Direction of feed Reel ∗ Order quantity needs to be multiple of the minimum quantity. <Tape and Reel information> Embossed carrier tapeTape Quantity Direction of feed The direction is the 1pin of product is at the upper right when you hold reel on the left hand and you pull out the tape on the right hand 3000pcs TR 1pin (Unit : mm) SSOP-B14 0.10 6.4 ± 0.3 4.4 ± 0.2 5.0 ± 0.2 0.22 ± 0.1 1.15 ± 0.1 0.65 0.15 ± 0.1 0.3Min. 0.1 ∗ Order quantity needs to be multiple of the minimum quantity. <Tape and Reel information> Embossed carrier tapeTape Quantity Direction of feed The direction is the 1pin of product is at the upper left when you hold reel on the left hand and you pull out the tape on the right hand 2500pcs Direction of feed Reel 1pin (Unit : mm) VQFN16 0.05 M 4.2±0.1 (1.35) 4.0±0.1 0.22±0.05 12 9 13 8 4.0±0.1 4.2±0.1 (0.22) (0.5 3-(0.35) 0.5 0.6 +0.1 −0.3 0.05 0.95MAX 0.22±0.05 0.02+0.03 −0.02 Notice : Do not use the dotted line area for soldering ∗ Order quantity needs to be multiple of the minimum quantity. <Tape and Reel information> Embossed carrier tape (with dry pack)Tape Quantity Direction of feed The direction is the 1pin of product is at the upper left when you hold reel on the left hand and you pull out the tape on the right hand 2500pcs Direction of feed Reel 1pin
R1010Awww.rohm.com © 2010 ROHM Co., Ltd. All rights reserved. Notice ROHM Customer Support System http://www.rohm.com/contact/ Thank you for your accessing to ROHM product informations. More detail product informations and catalogs are available, please contact us. Notes No copying or reproduction of this document, in part or in whole, is permitted without the consent of ROHM Co.,Ltd. The content specified herein is subject to change for improvement without notice. The content specified herein is for the purpose of introducing ROHM's products (hereinafter "Products"). If you wish to use any such Product, please be sure to refer to the specifications, which can be obtained from ROHM upon request. Examples of application circuits, circuit constants and any other information contained herein illustrate the standard usage and operations of the Products. The peripheral conditions must be taken into account when designing circuits for mass production. Great care was taken in ensuring the accuracy of the information specified in this document. However, should you incur any damage arising from any inaccuracy or misprint of such information, ROHM shall bear no responsibility for such damage. The technical information specified herein is intended only to show the typical functions of and examples of application circuits for the Products. ROHM does not grant you, explicitly or implicitly, any license to use or exercise intellectual property or other rights held by ROHM and other parties. ROHM shall bear no responsibility whatsoever for any dispute arising from the use of such technical information. The Products specified in this document are intended to be used with general-use electronic equipment or devices (such as audio visual equipment, office-automation equipment, commu- nication devices, electronic appliances and amusement devices). The Products specified in this document are not designed to be radiation tolerant. While ROHM always makes efforts to enhance the quality and reliability of its Products, a Product may fail or malfunction for a variety of reasons. Please be sure to implement in your equipment using the Products safety measures to guard against the possibility of physical injury, fire or any other damage caused in the event of the failure of any Product, such as derating, redunda ncy, fire control and fail-safe designs. ROHM shall bear no responsibility whatsoever for your use of any Product outside of the prescribed scope or not in accordance with the instruction manual. The Products are not designed or manufactured to be used with any equipment, device or system which requires an extremely high level of reliability the failure or malfunction of which may result in a direct threat to human life or create a risk of human injury (such as a medical instrument, transportation equipment, aerospac e machinery, nuclear-reactor controller, fuel- controller or other safety device). ROHM shall bear no responsibility in any way for use of any of the Products for the above special purposes. If a Product is intended to be used for any such special purpose, please contact a ROHM sales representative before purchasing. If you intend to export or ship overseas any Product or technology specified herein that may be controlled under the Foreign Exchange and the Foreign Trade Law, you will be required to obtain a license or permit under the Law.