Primary side mark 3.0 ± 0.5. Parameter Symbol Ratings Unit IFM ±1 A. PO 200 mw. V iso T opr. T stg - 55 to C. T sol 260 C

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1 PC96 PC96 DC Input Type OPIC Photocoupler with Built-in ON/OFF Delay Circuit Features Outline Dimensions (Unit : mm ) 1. Propagation delay time 2. ±.2 ( t PHL, t PLH : TYP..7ms ) High noise resistance type PC96 ( CM H, CM L : TYP. 2kV/ µ s ) 3. High sensitivity ( IFLH : MAX. 1. ma ). Bi-directional input, -channel type Applications 1. Programmable controllers Primary side mark 3. ± ± ±. 1.2 ± ± ±.. ±.1 Internal connection diagram TYP. 3. ±. 6. ±. 9 Epoxy resin.26 ±.1 θ = to 13 θ A A A A Absoulte Maximum Ratings V IN1a V IN3a 9 V CC 13 V O2 2 V IN1b 6 V IN3b 1 V O 1 3 V IN2a 7 V INa 11 1 V O1 V IN2b 8 V INb 12 V O3 16 V CC A : Light detecting portion + signal processing circuit * OPIC ( Optical IC ) is a trademark of the SHARP Corporation. An OPIC consists of a light-detecting element and signalprocessing circuit integrated onto a single chip. (Ta= 2 C) Parameter Symbol Ratings Unit *1 Forward current IF ±26 ma Input *1, *2 Peak forward current IFM ±1 A *1 Power dissipation P mw Supply voltage V CC 7 V Output *1, * Output voltage VO 7 V *1 Output current IO ma *3 Power dissipation PO 2 mw * Isolation voltage Operating temperature V iso T opr - 2 to + 8 V rms C Storage temperature T stg - to + 12 C *6 Soldering temperature T sol 26 C *1 Each channel *2 Pulse width<=1µs, Duty ratio :.1 *3 All channel * Shall not exceed from supply voltage ( V CC ). * to 6% RH, AC for 1min. *6 For 1 seconds In the absence of confirmation by device specification sheets, SHARP takes no responsibility for any defects that occur in equipment using any of SHARP's devices, shown in catalogs, data books, etc. Contact SHARP in order to obtain the latest version of the device specification sheets before using any SHARP's device.

2 PC96 Electro-optical Characteristics Input Output Transfer characterisics Parameter Forward voltage Terminal capacitance Operating supply voltage Low level output voltage High level output voltage Output short-circuit current *7 Low level supply current *7 High level supply current *8 Power supply noise induction Output high level *9 Power supply noise induction Output low level Low High threshold input current 1 Low High threshold input current 2 *7 Isolation resistance Low High propagation time High Low propagation time Response time Rise time Fall time Instantaneous common mode rejection voltage (High level output ) Instantaneous common mode rejection voltage (Low level output ) *1 Input terminal noise-proof Symbol V F Ct V OL V OH IOS ICCL I CCH PSNI H PSNI L LH1 LH2 R ISO t PLH t PHL t r tf CM H CML SN (Shows characteristics value 1ch. at Vcc= V, Ta= 2 C, unless otherwise specified ) Conditions MIN. TYP. MAX. Unit Fig. IF = ± 1mA V V F =, f = 1MHz pf V IF = ma, I OL = 1.6mA -.1. V 1 IF = ± ma V 2 IF = ± ma ma 3 IF = ma ma IF= ± ma ma =.k Ω, = ± ma fac = 1kHz. - - Vp - p =.k Ω, = ma fac = 1kHz. - - Vp - p ma =.k Ω ma DCV, to 6% RH IF= ± ma =.k Ω x1 1 1x Ω ms ms µ s µ s =.k Ω, = ± ma V CM = 6V (peak ) V/ µ s V O (MIN. ) = 2.V =.k Ω, = ma 8 VCM = 6V (peak ) V/ µ s V O (MAX. ) =.8V =kω ma 9 *7 All channel *8 Maximum Peak to peak voltage of sine wave to keep Vo>= 3.V when it is superposed 1kHz sine wave to Vcc. *9 Maximum Peak to peak voltage of sine wave to keep Vo<=.V when it is superposed 1kHz sine wave to Vcc. *1 Maximum value which Vo can keep.v MAX. when it inputs the pulse, (1 cycle : 1ms and pulse width : 1 µs).

3 PC96 Test circuit Fig. 1 Fig. 2 PC96 PC96 V V Fig. 3 PC96 Fig. PC96 A A Fig. PC96 V f AC = 1kHz Fig. 6 PC96.1µ F It measures the when output changes from Low level to High level.

4 PC96 Fig. 7 PC96 Input T T = ± ma 7Ω.1µ F V O (Note ) T >= ms t PLH t r t PHL = ma 9% 1.V 1% tf Fig. 8 PC96 V CM (peak) SW B A.1µ F V CM CM H, V O SW at B, = ± ma V OH V O (MIN.) = 2.V V CM + - CM L, V O SW at A, = ma V O (MAX.) =.8V V OL Fig. 9 PC96 Input 9% 7Ω.1µ F % 1% 1ns 1µ s 1ns 1ms

5 PC96 Internal Equivalent Circuit Diagram ( 1ch. ) Voltage regulator Comparator Decoder 1k Ω V CC V O + - Oscillation circuit Q1 Q2 Q3 Q Q U/D U/D Counter CK Fig. 1 Forward Current vs. Ambient Temperature Fig. 2 Supply Current vs. Ambient Temperature Forward current ( ma ) Supply current I CCL, I CCH ( ma ) I CCL ( = ma) V CC =V I CCH ( = ± ma) Fig. 3 Low Level Output Voltage vs. Ambient Temperature Low level output voltage V OL ( V) V CC =V = ma I OL = 1.6mA Fig. Relative Threshold Input Current vs. Ambient Temperature Relative threshold input current 2. V CC =V =kω LH = 1 at T a = 2 C

6 PC96 Fig. Propagation Delay Time vs. Forward Current Fig. 6 Propagation Delay Time vs. Ambient Temperature Propagation delay time t PLH, t PHL (ms ) t PLH, t PHL =kω T a = 2 C Propagation delay time t PLH, t PHL (ms ) t PLH, t PHL V CC =V = ± ma =kω 1 Forward current ( ma ) Fig. 7 Output Short-circuit Current vs. Ambient Temperature Output short-circuit current I OS ( ma ) V CC =V -.1 = ± ma Fig. 8 Rise Time, Fall Time vs. Load Resistance Rise time, fall time t r, t f (µs) t r t f Load resistance RL (k Ω ) V CC =V = ± ma T a = 2 C

7 PC96 Fig. 9-a Supply Voltage/Output Voltage vs. Fig. 9-b Supply Voltage/Output Voltage vs. Time ( 1 ) Time ( 2 ) Supply voltage V CC ( V) 3 2 = ma =kω T a = 2 C dvcc dt = ±.1V/ms V CC Supply voltage VCC ( V) 3 2 = ± ma =kω T a = 2 C dvcc = ±.1V/ms dt V CC Time (ms ) 1 Time (ms ) Output voltage VO ( V) 3 2 Output voltage VO ( V) 3 2 V O 1 V O 1 Time (ms ) 1 Time (ms ) 1 Please refer to the chapter Precautions for Use.

8 Application Circuits NOTICE The circuit application examples in this publication are provided to explain representative applications of SHARP devices and are not intended to guarantee any circuit design or license any intellectual property rights. SHARP takes no responsibility for any problems related to any intellectual property right of a third party resulting from the use of SHARP's devices. Contact SHARP in order to obtain the latest device specification sheets before using any SHARP device. SHARP reserves the right to make changes in the specifications, characteristics, data, materials, structure, and other contents described herein at any time without notice in order to improve design or reliability. Manufacturing locations are also subject to change without notice. Observe the following points when using any devices in this publication. SHARP takes no responsibility for damage caused by improper use of the devices which does not meet the conditions and absolute maximum ratings to be used specified in the relevant specification sheet nor meet the following conditions: (i) The devices in this publication are designed for use in general electronic equipment designs such as: --- Personal computers --- Office automation equipment --- Telecommunication equipment [terminal] --- Test and measurement equipment --- Industrial control --- Audio visual equipment --- Consumer electronics (ii)measures such as fail-safe function and redundant design should be taken to ensure reliability and safety when SHARP devices are used for or in connection with equipment that requires higher reliability such as: --- Transportation control and safety equipment (i.e., aircraft, trains, automobiles, etc.) --- Traffic signals --- Gas leakage sensor breakers --- Alarm equipment --- Various safety devices, etc. (iii)sharp devices shall not be used for or in connection with equipment that requires an extremely high level of reliability and safety such as: --- Space applications --- Telecommunication equipment [trunk lines] --- Nuclear power control equipment --- Medical and other life support equipment (e.g., scuba). Contact a SHARP representative in advance when intending to use SHARP devices for any "specific" applications other than those recommended by SHARP or when it is unclear which category mentioned above controls the intended use. If the SHARP devices listed in this publication fall within the scope of strategic products described in the Foreign Exchange and Foreign Trade Control Law of Japan, it is necessary to obtain approval to export such SHARP devices. This publication is the proprietary product of SHARP and is copyrighted, with all rights reserved. Under the copyright laws, no part of this publication may be reproduced or transmitted in any form or by any means, electronic or mechanical, for any purpose, in whole or in part, without the express written permission of SHARP. Express written permission is also required before any use of this publication may be made by a third party. Contact and consult with a SHARP representative if there are any questions about the contents of this publication. 11

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