High Speed Optocoupler, 100 kbd, Low Input Current, High Gain

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1 High Speed Optocoupler, 00 kbd, Low nput Current, High Gain i79070 NC A C NC 8 7 V CC V B V 0 GND FEATURES ndustry Standard SOC-8 Surface Mountable Package High Current Transfer Ratio, 800 % Low nput Current, 0. ma High Output Current, 0 ma solation Test Voltage, 000 V RMS TTL Compatible Output, L = 0. V Adjustable Bandwidth-Access to Base Lead (Pb)-free component Component in accordance to RoHS 00/9/EC and WEEE 00/9/EC DESCRPTON Very high current ratio together with 000 V RMS isolation are achieved by coupling an LED with an integrated high gain photo detector in a SOC-8 package. Separate pins for the photo diode and output stage enable TTL compatible saturation voltages with high speed operation. Photodarlington operation is achieved by tying the V CC and terminals together. Access to the base terminal allows adjustment to the gain bandwidth. The SFH8T is ideal for TTL applications since the 00 % minimum current transfer ratio with an LED current of. ma enables operation with one unit loadin and one unit load-out with a. kω pull-up resistor. The SFH9T is best suited for low power logic applications involving CMOS and low power TTL. A 00 % current transfer ratio with only 0. ma of LED current is guaranteed from 0 C to 70 C. Caution: Due to the small geometries of this device, it should be handled with Electrostatic Discharge (ESD) precautions. Proper grounding would prevent damage further and/or degradation which may be induced by ESD. AGENCY APPROVALS UL77, File No. E7 System Code H or J, Double Protection DN EN (VDE088) Available with Option CSA 97 APPLCATONS Logic Ground solation -TTL/TTL, TTL/CMOS, CMOS/CMOS, CMOS/TTL EA RS C Line Receiver Low nput Current Line Receiver Long Lines, Party Lines Telephone Ring Detector 7 VAC Line Voltage Status ndication - Low nput Power Dissipation Low Power Systems - Ground solation ORDER NFORMATON PART SFH8T SFH9T REMARKS CTR 00 (00-00) %, SOC-8 CTR 000 (00-00) %, SOC-8 For additional information on the available options refer to Option nformation. Product is available only on tape and reel.

2 ABSOLUTE MAXMUM RATNGS ) PARAMETER TEST CONDTON PART SYMBOL VALUE UNT NPUT Reverse input voltage V R.0 V Supply and output voltage V CC (pin 8-), (pin -) SFH8T V CC, - 0. to 7.0 V SFH9T V CC, - 0. to 8 V nput power dissipation P diss mw Derate linearly above 0 C Free air temperature 0.7 mw/ C Average input current F(AVG) 0 ma Peak input current 0 % duty cycle-.0 ms pulse width FRM 0 ma Peak transient input current t p.0, 00 pps FSM.0 A OUTPUT Output current (pin ) O 0 ma Emitter-base reverse current (pin - 7) 0. V Output power dissipation P diss 0 mw Derate linearly from C.0 mw/ C COUPLER solation test voltage between emitter and detector V SO 000 V RMS Storage temperature T stg - to + C Lead soldering temperature t = 0 s T sld 0 C Junction temperature T j 00 C Ambient temperature range T amb - to + 00 C Pollution degree (DN VDE 00) Creepage distance.0 mm Clearance.0 mm Comparative tracking index per DN EC /VDE 00, part 7 solation resistance = 00 V, T amb = C R O 0 Ω = 00 V, T amb = 00 C R O 0 Ω ) T amb = C, unless otherwise specified. Stresses in excess of the absolute Maximum Ratings can cause permanent damage to the device. Functional operation of the device is not implied at these or any other conditions in excess of those given in the operational sections of this document. Exposure to absolute Maximum Rating for extended periods of the time can adversely affect reliability.

3 ELECTRCAL CHARACTERSTCS ) PARAMETER TEST CONDTON PART SYMBOL MN TYP. MAX UNT NPUT ) nput forward voltage F =. ma V F..7 V Temperature coefficient, forward voltage OUTPUT ) Logic low output voltage, Logic high output current, Logic low supply current, Logic high supply current, COUPLER ) F =. ma F =. ma, O =.8 ma, V CC =. V F =. ma, O = 8.0 ma, V CC =. V F =.0 ma, O = ma, V CC =. V F = ma, O = ma, V CC =. V ΔV F / ΔT amb -.8 mv/ C L V L V L V L V F = 0 ma, = V CC = 7.0 V O 0. 0 µa F = 0 ma, = V CC = 8 V O µa F =. ma, = OPEN, V CC = 8 V F = 0 ma, = OPEN, V CC = 8 V CCL 0.. ma CCH µa Capacitance (input-output), (Note ) f =.0 MHz C O 0. pf nput capacitance f =.0 MHz, V F = 0 C N pf Resistance (input-output), (Note ) = 00 VDC, T amb = C R O 0 Ω = 00 VDC, T amb = 00 C R O 0 Ω ) T amb = C unless otherwise specified. Minimum and maximum values are testing requirements. Typical values are characteristics of the device and are the result of engineering evaluation. Typical values are for information only and are not part of the testing requirements. ) T amb = 0 C to 70 C. Typical values are specified at T amb = C. ) Pin 7 open. ) Device considered a two-terminal device: pins,, and shorted together and pins,, 7 and 8 shorted together. CURRENT TRANSFER RATO ) PARAMETER TEST CONDTON PART SYMBOL MN TYP. MAX UNT Current Transfer Ratio, (Notes and ) ) T amb = 0 C to 70 C. Typical values are specified at T amb = C. ) DC current transfer ratio is defined as the ratio of output collector current, O, to the forward LED input current, F times 00 %. ) Pin 7 open. F =. ma, = 0. V, V CC =. V SFH8T CTR % F = 0. ma, = 0. V, V CC =. V SFH9T CTR % F =. ma, = 0. V, V CC =. V SFH9T CTR %

4 SWTCHNG CHARACTERSTCS ) PARAMETER TEST CONDTON PART SYMBOL MN TYP. MAX UNT low at output F =. ma, R L =. kω SFH8T t PHL.0 0 low at output, (Notes and ) F = 0. ma, R L =.7 kω SFH9T t PHL.0 low at output F = ma, R L = 70 Ω SFH9T t PHL 0..0 high at output F =. ma, R L =. kω SFH8T t PLH.0 high at output, (Notes and ) F = 0. ma, R L =.7 kω SFH9T t PLH.0 0 high at output F = ma, R L = 70 Ω SFH9T t PLH. 7.0 ) T amb = C, unless otherwise specified. ) Pin 7 open. ) Using a resistor between pin and 7 will decrease gain and delay time. 0 % Duty Cycl /f < 00 Pulse Generator ZO =0Ω t r =ns F = Monitor F R m 8 7 R L 0. µf + V VO CL=pF 0 V (Saturated Response) t PHL (Non-Saturated Response).V 90 % 0 %.V t PLH 90 % 0 % V VOL V isfh8t_0 t f t r Figure. Switching Test Circuit COMMON MODE TRANSENT MMUNTY PARAMETER TEST CONDTON PART SYMBOL MN TYP. MAX UNT Common mode transient immunity at logic high level output, (Notes and ) Common mode transient immunity at logic low level output, (Notes and ) F = 0 ma, R L =. kω, V CM = 0 V P-P CM H K V/ F =. ma, R L =. kω, V CM = 0 V P-P CM L K V/ ) Common mode transient immunity in logic high level is the maximum tolerable (positive) dv cm /dt on the leading edge of the common mode pulse, V CM, to assure that the output will remain in a logic high state (i.e. >.0 V) common mode transient immunity in logic low level is the maximum tolerable (negative) dv cm /dt on the trailing edge of the common mode pulse signal, V CM, to assure that the output will remain in a logic low state (i.e. < 0.8 V). ) n applications where dv/dt may exceed 0,000 V/μs (such as state discharge) a series resistor, R CC should be included to protect C from destructively high surge currents. The recommended value is Refer to Figure. R CC [(V)/0. F (ma)] kω.

5 A F 8 7 R CC (see Note ) 0 Ω 0. µf R L + V V CM 0 V 90 % 90 % 0 % 0 % tr t f t f +t f = ns B V CC Switch at A: F =0mA V isfh8t_0 V CM + Pulse Generator Switch at B: F =. ma L Figure. Test Circuit for Transient mmunity and Typical Waveforms SAFETY AND NSULATON RATNGS ) PARAMETER TEST CONDTON SYMBOL MN TYP. MAX UNT Climatic classification (according to EC 8 part ) /00/ Comparative tracking index CT 7 99 TM 000 V RM 0 V P SO 0 mw S 0 ma T S C Creepage mm Clearance mm nsulation thickness, reinforced rated per EC mm ) As per EC077--, , this optocoupler is suitable for safe electrical insulation only within the safety ratings. Compliance with the safety ratings shall be ensured by means of protective circuits. PACKAGE DMENSONS in inches (millimeters) 0.0 ± 0.00 (.0 ± 0.) R 0.00 (0.) SO Method A 0.0 (.0) Pin One D 0.00 (0.0) (0.0) 0.9 ± 0.00 (.88 ± 0.) C 0. ± (.7) L (.9 ± 0.) 0.0 (0.) 0.00 (.7) typ. 0.0 (0.) 0.0 ± 0.00 (0.8 ± 0.0) (0.0) 0.00 ± 0.00 (0. ± 0.0) Plcs. max. 0.0 (0.) 0.0 (0.9) 0.70 (.) 0.0 (.) 0.0 (.) ± (.9 ± 0.) R 0.00 (0.) max. 0. ± 0.00 (.8 ± 0.) Lead coplanarity ± 0.00 (0.0) max. i7800

6 Ozone Depleting Substances Policy Statement t is the policy of Vishay Semiconductor GmbH to. Meet all present and future national and international statutory requirements.. Regularly and continuously improve the performance of our products, processes, distribution and operating systems with respect to their impact on the health and safety of our employees and the public, as well as their impact on the environment. t is particular concern to control or eliminate releases of those substances into the atmosphere which are known as ozone depleting substances (ODSs). The Montreal Protocol (987) and its London Amendments (990) intend to severely restrict the use of ODSs and forbid their use within the next ten years. Various national and international initiatives are pressing for an earlier ban on these substances. Vishay Semiconductor GmbH has been able to use its policy of continuous improvements to eliminate the use of ODSs listed in the following documents.. Annex A, B and list of transitional substances of the Montreal Protocol and the London Amendments respectively. Class and ozone depleting substances in the Clean Air Act Amendments of 990 by the Environmental Protection Agency (EPA) in the USA. Council Decision 88/0/EEC and 9/90/EEC Annex A, B and C (transitional substances) respectively. Vishay Semiconductor GmbH can certify that our semiconductors are not manufactured with ozone depleting substances and do not contain such substances. We reserve the right to make changes to improve technical design and may do so without further notice. Parameters can vary in different applications. All operating parameters must be validated for each customer application by the customer. Should the buyer use products for any unintended or unauthorized application, the buyer shall indemnify against all claims, costs, damages, and expenses, arising out of, directly or indirectly, any claim of personal damage, injury or death associated with such unintended or unauthorized use. Vishay Semiconductor GmbH, P.O.B., D-70 Heilbronn, Germany

7 Legal Disclaimer Notice Vishay Disclaimer All product specifications and data are subject to change without notice. Vishay ntertechnology, nc., its affiliates, agents, and employees, and all persons acting on its or their behalf (collectively, Vishay ), disclaim any and all liability for any errors, inaccuracies or incompleteness contained herein or in any other disclosure relating to any product. Vishay disclaims any and all liability arising out of the use or application of any product described herein or of any information provided herein to the maximum extent permitted by law. The product specifications do not expand or otherwise modify Vishay s terms and conditions of purchase, including but not limited to the warranty expressed therein, which apply to these products. No license, express or implied, by estoppel or otherwise, to any intellectual property rights is granted by this document or by any conduct of Vishay. The products shown herein are not designed for use in medical, life-saving, or life-sustaining applications unless otherwise expressly indicated. Customers using or selling Vishay products not expressly indicated for use in such applications do so entirely at their own risk and agree to fully indemnify Vishay for any damages arising or resulting from such use or sale. Please contact authorized Vishay personnel to obtain written terms and conditions regarding products designed for such applications. Product names and markings noted herein may be trademarks of their respective owners. Document Number: 9000 Revision: 8-Jul-08

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