PC723V SHARP | Alldatasheet

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*1 Pulse width<=100µs, Duty ratio : 0.001 *3 For 10 seconds n Absolute Maximum Ratings n Features n Applications 2. High isolation voltage between input and 3. Current transfer ratio 4. TTL compatible output output (V iso 1. Telephone systems, telegram systems 2. System appliances, measuring instruments 3. Signal transmission between circuits of different potentials and impedances Internal connection diagram Anode mark θθ PC723V n Outline Dimensions 1. High collector-emitter voltage (V CEO : 80V) CTR : MIN. 50% at IF = 5mA, V CE =5 V Parameter Symbol Rating Unit Input Forward current I F 50 mA *1 IFM 1A Reverse voltage V R 6V Power dissipation P 70 mW Output Collector-emitter voltage V CEO 80 V Emitter-collector voltage V ECO 6V Collector-base voltage V CBO 130 V Emitter-base voltage V EBO 6V Collector current I C 50 mA Collector power dissipation P C 150 mW Total power dissipation P tot 200 mW *2Isolation voltage V iso Operating temperature T opr - 25 to + 100 ˚C Storage temperature T stg - 40 to + 125 ˚C *3Soldering temperature T sol 260 ˚C data books, etc. Contact SHARP in order to obtain the latest version of the device specification sheets before using any SHARP's device.” “ 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, 123 12 3 65 4

1 Anode

2 Cathode

3 N C

4 Emitter

5 Collector

6 Base

  1. Recognized by UL, file No. E64380 High Collector-emitter Voltage Type Photocoupler Peak forward current ( Unit : mm) 5 000 *2 40 to 60% RH, AC for 1 minute h Lead forming type (I type) and taping reel type (P type) are also available. (PC723VI/PC723VP ) : 5 000Vrms ) V rms θ = 0 to 13˚ 6.5± 0.5 1.2± 0.30.9± 0.2 7.12± 0.5 3.5± 0.53.7± 0.5 3.35± 0.5 2.54± 0.25 0.5± 0.1 0.5TYP. 0.26± 0.1 7.62± 0.3 hh TUV (VDE0884 ) approved type as an option is also available...

n Electro-optical Characteristics (Ta= 25˚C ) -2 5 F (mA ) 0 25 50 75 100 125 Fig. 1 Forward Current vs. Ambient Temperature Ambient temperature Ta (˚C) Duty ratio Pulse width <=100µ s 100 200 500 210 -3 10 -25 2 10 -15 2 5 Fig. 3 Peak Forward Current vs. Duty RatioPeak forward current IFM (mA ) Fig. 4 Forward Current vs. Forward Voltage Forward voltage VF (V ) 0 125 100 200 150 25 50 75 100 Ambient TemperatureC (mW ) -2 5 Fig. 2 Collector Power Dissipation vs. Forward current IF (mA ) Parameter Symbol Conditions MIN. TYP. MAX. Unit Input Forward voltage V F IF = 20mA - 1.2 1.4 V Peak forward voltage V FM IFM = 0.5A - - 3.0 V Reverse current I R V R =4 V - - 1 0 µ A Terminal capacitance C t V = 0, f = 1kHz - 30 250 pF Output Collector dark current I CEO V CE = 40V, IF = 0, RBE =- - 1 0 -7 A Transfer charac- teristics Current transfer ratio CTR I F = 5mA, V CE = 5V, RBE = 50 100 400 % Collector-emitter saturation voltageV CE (sat) IF = 20mA, IC = 1mA, R BE = - 0.1 0.3 V Isolation resistance R ISO 5x1 0 10 1011 - Ω Floating capacitance C f V = 0, f = 1MHz - 0.6 1.0 pF Cut-off frequency f c V CE = 5V, IC = 2mA, R L = 100Ω , R BE = , - 3dB - 50 - kHz Response time Rise time Fall time tr V CE = 2V, IC = 2mA - 6 20 µ s tf R L = 100Ω , RBE =- 7 2 0 µ s Forward current I Collector power dissipation P Ambient temperature Ta (˚C) T a= 25˚C DC500V, 40 to 60% RH 50˚C 25˚C 0˚C 100 200 500 - 25˚C T a = 75˚C 10 000 5 000 2 000 1 000

Current transfer ratio CTR (% ) 120 160 2 5 10 20 50 180 140 100 100k Ω 500k Ω Forward current I F (mA ) 123456789 1 0 20mA 10mA 5mA 3mA Fig. 6 Collector Current vs. Collector-emitter Voltage 100 150 0 2 55 07 5 1 0 0 Relative current transfer ratio (% ) Fig. 7 Relative Current Transfer Ratio vs. Ambient Temperature 0.02 0.04 0.06 0.08 0.10 0.12 0.14 0.16 - 25 0 25 50 75 100 -1 1 10 -1 0 10 -9 10 -8 10 -7 10 -6 10 -5 -2 5 250 50 75 100 Fig. 9 Collector Dark Current vs. Ambient Temperature Fig. 5 Current Transfer Ratio vs. Forward Current Collector current IC (mA ) Collector-emitter voltage VCE (V ) Fig. 8 Collector-emitter Saturation Voltage vs. Ambient TemperatureCE (sat) (V ) Collector dark current ICEO (A ) Ambient temperature Ta (˚C) Ambient temperature Ta (˚C)Ambient temperature Ta (˚C) L (k Ω ) 100 Response time (µ s) 0.5 0.2 0.1 0.2 2 100.5 1 5 20 -2 5 T a = 25˚C V CE =5 V R BE = Collector-emitter saturation voltage V T a = 25˚C R BE = IF = 30mA R BE = V CE =5 V IF = 5mA R BE = IC = 1mA IF = 20mA R BE = V CE = 40V T a = 25˚C R BE = IC = 2mA V CE =2 V tr tf tf tr td ts Fig.10 Response Time vs. Load Resistance Load resistance R

Fig.11 Frequency Response Frequency f (kHz ) 0.5 1 2 5 200 100502010 500 100 Ω1k Ω Voltage gain Av (dB )Collector-emitter saturation voltage VCE (sat) (V ) Forward current IF (mA ) 2468 1 0 3mA 5mA 7mA 12 14 16 I C = 1mA R BE = T a = 25˚C Fig.12 Collector-emitter Saturation Voltage vs. Forward Current Test Circuit for Response Time 90% 10% Output Input RLInput Output VCC RD td ts tr t Test Circuit for Frequency Response VCC RL Output RD -2 0 -1 5 -1 0 f Please refer to the chapter “Precautions for Use ” V CE =5 V IC = 2mA R BE = T a = 25˚C R L = 10kΩ . l