PC814 SHARP | Alldatasheet

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  1. High isolation voltage between input and 3. Compact dual-in-line package 4. Current transfer ratio 1. Programmable controllers 2. Telephone sets, telephone exchangers 3. System appliances 4. Signal transmission between circuits of CTR : MIN. 20% at I F = ± 1mA, VCE =5 V different potentials and impedances n Outline Dimensions ( Unit : mm) 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, 5. Recognized by UL, file No. E64380 θ θ θ θ θθ PC844 PC844 PC814 Internal connection PC814 diagram CTR rank mark rank mark PC824 PC824 Internal connection diagram CTR

1 Anode, Cathode

2 Anode, Cathode

3 Emitter

4 Collector

1 3 Anode,Cathode 2 4 Anode,Cathode 123456 7 8 CTR rank mark Internal connection diagram 12345678

1357 Anode, Cathode

2468 Anode, Cathode

9 Emitter

PC814 (1-channel type) PC824 (2-channel type) PC844 (4-channel type) 1. AC input Primary side mark h Lead forming type (I type) and taping reel type (P type) are also available. (PC814I/PC814P ) output (V : 5 000Vrms ) 6.5± 0.5 0.9± 0.21.2± 0.3 2.54± 0.25 19.82± 0.5 3.5± 0.53.0± 0.5 0.5± 0.1 7.62± 0.3 0.26± 0.1 θ = 0 to 13˚ 0.5TYP. 6.5± 0.5 1.2± 0.3 0.9± 0.2 2.54± 0.25 θ = 0 to 13˚ 9.66± 0.5 3.5± 0.53.0± 0.5 0.5TYP. 0.5± 0.1 0.26± 0.1 7.62± 0.3 6.5± 0.5 2.54± 0.25 0.9± 0.2 1.2± 0.3 4.58± 0.5 3.5± 0.53.0± 0.5 0.5± 0.1 0.5TYP. 7.62± 0.3 0.26± 0.1 θ = 0 to 13˚ 111213141516 111213141516

*3 For 10 seconds *4 Classification table of current transfer ratio Parameter Symbol Conditions Forward voltage V F IF = ± 20mA Peak forward voltage V FM IFM = ± 0.5V Terminal capacitance C t V = 0, f = 1kHz Collector dark current I CEO V CE = 20V, IF =0 Transfer charac- teristics *4Current transfer ratio CTR I F = ± 1mA, VCE =5 V Collector-emitter saturation voltage V CE (sat) IF = ± 20mA, IC = 1mA Isolation resistance R ISO Floating capacitance V = 0, f = 1MHz Cut-off frequency f c tr V CE = 2V, IC = 2mA, R L = 100 Ωtf MIN. TYP. MAX. Unit - 1.2 1.4 V - - 3.0 V - 50 250 pF -- 1 0 -7 A 20 - 300 % - 0.1 0.2 V 5x1 010 1011 - Ω 0.6 1.0 pF 15 80 - kHz 41 8 µ s -3 1 8 µ s (Ta= 25˚C )n Absolute Maximum Ratings (Ta= 25˚C ) C f V CE = 5V, IC = 2mA, R L = 100Ω , - 3dB Parameter Symbol Rating Unit Input Forward current I F ± 50 mA *1Peak forward current I FM ±1 A Power dissipation P 70 mW Output Collector-emitter voltage V CEO 35 V Emitter-collector voltage V ECO 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 - 30 to + 100 ˚C Storage temperature T stg - 55 to + 125 ˚C *3Soldering temperature T sol 260 ˚C *1 Pulse width <=100µs, Duty ratio : 0.001 n Electro-optical Characteristics Model No. Rank mark PC814A A 50 to 150PC824A PC844A PC814 A or no mark 20 to 300PC824 PC844 Response time Rise time Fall time Input Output CTR (% ) 5 000 *2 40 to 60% RH, AC for 1 minute DC500V, 40 to 60% RH V rms

210 -3 10 -25 2 10 -15 2 5 Fig. 3 Peak Forward Current vs. Duty Ratio 0.1 0.50.2 12 5 10 20 50 100 120 140 Collector-emitter voltage VCE (V) 468 1 0 20mA 10mA 5mA 1mA Fig. 6 Collector Current vs. Collector-emitter Voltage Peak forward current IFM (mA ) Forward current IF (mA ) -3 0 F (mA ) 0 25 50 75 100 125 Ambient temperature T a (˚C) PC814 Series 25˚C 0˚C F (mA ) 100 200 500 50˚C Fig. 4 Forward Current vs. Forward Voltage - 25˚C Forward voltage VF (V ) 0 125 100 200 150 25 50 75 100 Ambient TemperatureC (mW ) -3 0 Fig. 2 Collector Power Dissipation vs. a (˚C) Fig. 1 Forward Current vs. Ambient Temperature Pulse width <=100µ s Fig. 5 Current Transfer Ratio vs. Forward Current Forward current I Ambient temperature T Collector power dissipation PForward current I Current transfer ratio CTR (% ) Collector current IC (mA ) T a = 25˚C V CE =5 V T a = 25˚C T a = 25˚C PC (MAX. ) IF = 30mA T a = 75˚C 10 000 5 000 2 000 1 000

Relative current transfer ratio (% ) Fig. 7 Relative Current Transfer Ratio vs. Ambient Temperature 250 50 75 100 Fig. 9 Collector Dark Current vs. Ambient Temperature Fig.11 Frequency Response Frequency f (kHz ) 0.2 202 200 1 000 100 Ω1k Ω 0.5 1 5 10 50 100 500 Fig. 8 Collector-emitter Saturation Voltage vs. Ambient Temperature Ambient temperature Ta (˚C) Ambient temperature Ta (˚C) Collector emitter saturation voltage VCE (sat) (V ) Collector dark current ICEO (A ) Ambient temperature Ta (˚C) Voltage gain Av (dB ) L (k Ω ) 100 Response time (µ s) 0.5 0.1 0.2 0.03 0.1 1 100.2 0.5 2 5 PC814 Series Test Circuit for Response Time VCC ttr ts 90% 10% td Output Input RLInput OutputRD -3 0 -2 0 -1 5 -1 0 f -3 0 0.01 0 20 40 60 80 100 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.1IF = 1mA V CE =5 V V CE = 20V V CE =5 V IC = 2mA T a = 25˚C R L = 10k Ω tr tf td ts V CE =2 V IC = 2mA T a = 25˚C IF = 20mA IC = 1mA -3 0 10 -1 2 10 -1 1 10 -1 0 10 -9 10 -8 10 -7 10 -6 Fig.10 Response Time vs. Load Resistance Load resistance R

Collector-emitter saturation voltage VCE (sat) (V ) Forward current IF (mA ) 2468 1 0 1mA 3mA 97531 5mA 7mA 11 12 13 14 15 Fig.12 Collector-emitter Saturation Voltage vs. Forward Current PC814 Series VCC RL Output RD Test Circuit for Frepuency Response T a = 25˚C IC = 0.5mA Please refer to the chapter “ Precautions for Use ”l