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6N137 Datasheet(PDF) 2 Page - Sharp Corporation |
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6N137 Datasheet(HTML) 2 Page - Sharp Corporation |
2 / 5 page 6N137 s Electro-optical Characteristics Note ) Typical values are all at V CC = 5V, Ta = 25˚C *1 Measured as 2-pin element. Connect pins 2 and 3, connect pins 5, 6, 7 and 8. *2 At Iin =10 mA, VF decreases at the rate of 1.6mV/˚C if the temperature goes up. *3 DC current transfer ratio is defined as the ratio of output collector current to forward bias input current. *4, *5 Refer to the Fig. 1. *6, *7 Refer to the Fig. 2. *8 CM H represents a common mode voltage ignorable rise time ratio that can hold logic( 1) state in output. CM L represents a common mode voltage ignorable fall time ratio that can hold logic( 0) state in output. s Recommmended Operating Conditions L:Logic ( 0 ) H:Logic ( 1 ) Truth Table 1. No necessary external pull-up resistor to hold enable input at high level 2. Connect a ceramic by-pass capacitor ( 0.01 to 0.1 F ) between VCC and GND at the position within 1cm from pin. Anode Cathode V V V GND O E CC (Enable) Circuit Block Diagram Input Enable Output HH L LH H HL H LL H Parameter Symbol MIN. MAX. Unit Low level input current I FL 0 250 A High level input current I FH 7.0 15 mA High level enable voltage V EH 2.0 V CC V Low level enable voltage V EL 0 0.8 V Supply voltage V CC 4.5 5.5 V Fanout ( TTL load ) N- 8 Operating temperature T opr 070 ˚C Parameter Symbol Conditions MIN. TYP. MAX. Unit Logic ( 1) output current I OH VCC = 5.5V, V O = 5.5V, I F = 250 µA, VE = 2.0V - 2 250 A Logic ( 0) output voltage V OL VCC = 5.5V, I F EH = 2.0V, I OL - 0.4 0.6 V Logic ( 1) enable current I EH VCC = 5.5V, V E = 2.0V - - 0.8 - Logic ( 0) enable current IEL VCC = 5.5V, V E = 0.5V - - 1.2 - 2.0 Logic ( 1) supply current I CCH VCC = 5.5V, I F E = 0.5V -7 15 Logic ( 0) supply current ICCL VCC = 5.5V, I F E = 0.5V -13 18 *1Leak current II-O I-O dc - - 1.0 m A *1Isolation resistance ( input-output ) R I-O V I-O = 500V, Ta = 25˚C - 1012 - Ω *1Capacitance ( input-output ) CI-O f = 1MHz, Ta = 25˚C - 0.6 - pF *2Input forward voltage V F IF - 1.6 1.75 V Input reverse voltage BVR IR = 10 m A, Ta = 25˚C 5 - - V Input capacitance CIN V F = 0, f = 1MHz - 60 - pF *3Current transfer ratio CTR IF L = 100 Ω - 700 - % *4Propagation delay time Output ( 0) → (1) t PLH Ta = 25˚C, V CC = 5V, R L = 350 Ω , C L = 15pF, I F -45 75 ns *5Propagation delay time Output (1) → (0) t PHL Ta = 25˚C, V CC = 5V, R L = 350 Ω , C L = 15pF, I F -45 75 ns t r , t f RL = 350 Ω , C L = 15pF, I F - 20, 30 - ns *6Enable propagation delay time (1) → ( 0) t ELH RL = 350 Ω , C L = 15pF, I FEH = 3.0V, V EL = 0.5V -40 - ns *7Enable propagation delay time ( 0) → (1) t EHL RL = 350 Ω , C L = 15pF, I FEH = 3.0V, V EL = 0.5V -15 - ns *8Instantaneous common mode rejection voltage “ Output ( 0) ” CMH V CM = 10V, R L = 350 Ω , VOF - 500 - V/ s *8Instantaneous common mode rejection voltage “ Output (1) ” CML VCM = 10V, R L = 350 Ω , V O F - - 500 - V/ s Output rise-fall time ( 10 to 90% ) mA mA mA mA = 5mA, V (Sinking ) = 13mA = 0mA, V = 10mA, V = 7.5mA = 7.5mA = 10mA, Ta = 25˚C = 5.0mA, R = 5mA = 0mA ( min. ) = 2V, I (max. ) = 0.8V, I = 7.5mA, V = 7.5mA, V = 7.5mA ( Ta = 0 to + 70˚C unless otherwise specified ) 45% RH, Ta = 25˚C, t = 5s, V = 3 000V - µ µ µ µ µ |
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