Analog High Speed Coupler, High Noise Immunity, 1 MBd, SOP-5 Package
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1 Analog High Speed Coupler, High Noise Immunity, MBd, SOP- Package DESCRIPTION The VOM2 and VOM, high speed optocouplers, each consists of a GaAlAs infrared emitting diode, optically coupled with an integrated photo detector and a high speed transistor. The photo detector is junction isolated from the transistor to reduce miller capacitance effects. The open collector output function allows circuit designers to adjust the load conditions when interfacing with different logic systems such as TTL, CMOS, etc. Because the VOM2 and VOM have a Faraday shield on the detector chip, it can also reject and minimize high input to output common mode transient voltages. There is no base connection, further reducing the potential electrical noise entering the package. The VOM2 and VOM are packaged in industry standard SOP- packages and are suitable for surface mounting. This an ideal solution for Industrial communication bus isolation, as well as isolated drive circuit applications such as IPM (intelligent power module) drivers. A C V CC C E FEATURES Surface mountable Industry standard SOP- footprint Compatible with infrared vapor phase reflow and wave soldering processes Isolation test voltage, 7 V RMS Very high common mode transient immunity: V/μs at V CM = V guaranteed (VOM) High speed: MBd TTL compatible Open collector output Material categorization: For definitions of compliance please see APPLICATIONS Fieldbus communication and control Logic ground isolation Analog signal ground isolation Replace pulse transformers IPM (intelligent power module) drivers AGENCY APPROVALS UL77, file no. E27 cul - file no. E27, equivalent to CSA bulletin A ORDERING INFORMATION V O M # T PART NUMBER SOP- 7.2 mm AGENCY CERTIFIED/PACKAGE CMTI (kv/μs) UL, cul SOP- VOM2T VOMT For additional information on the available options refer to option information. The product is available only on tape and reel. Rev.., -Oct- Document Number: 887
2 ABSOLUTE MAXIMUM RATINGS (T amb = 2 C, unless otherwise specified) PARAMETER TEST CONDITION SYMBOL VALUE UNIT INPUT Reverse voltage V R V DC forward current I F 2 ma Surge forward current t p μs, pulses/s I FSM A Power dissipation T amb 7 C P diss mw OUTPUT Supply voltage V S -. to + V Output voltage V O -. to +2 V Output current I O 8 ma Power dissipation T amb 7 C P diss mw COUPLER Isolation test voltage between emitter and detector (refer to climate DIN, part 2, Nov. 7) t = min V ISO 7 V RMS Comparative tracking index per DIN IEC 2/VDE, part 7 Storage temperature range T stg - to +2 C Ambient temperature range T amb - to + C Junction temperature T j C Soldering temperature () t < s max. 2 C 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 ratings for extended periods of the time can adversely affect reliability. () Refer to reflow profile for soldering conditions for surface mounted devices. ELECTRICAL CHARACTERISTICS (T amb = - C to + C, unless otherwise specified) PARAMETER TEST CONDITION PART SYMBOL MIN. TYP. MAX. UNIT INPUT Input forward voltage I F = ma V F..8 V Input reverse current V R = V I R. μa Input capacitance f = MHz, V F = V, T amb = 2 C C IN 7 pf Temperature coefficient of forward voltage I F = ma ΔV F /ΔT amb -.7 mv/ C OUTPUT Logic low supply current I F = ma, V O = open, V CC = V I CCL 2 μa I F = ma, V O = open, V CC = V, Logic high supply current T amb = 2 C I CCH. μa I F = ma, V O = open, V CC = V I CCH 2 μa I F = ma, V CC =. V, I O = ma, Logic low output voltage T amb = 2 C V OL.. V I F = ma, V CC = V, I O = 2. ma V OL. V I F = ma, V O = V CC =. V, T amb = 2 C I OH.. μa Logic high output current I F = ma, V O = V CC = V, T amb = 2 C I OH. μa I F = ma, V O = V CC = V I OH μa COUPLER Capacitance (input-output) () f = MHz, T amb = 2 C C IO. pf 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. All typical values are measured at T amb = 2 C. () A. μf bypass capacitor connected between pins and is recommended. Rev.., -Oct- 2 Document Number: 887
3 CURRENT TRANSFER RATIO (T amb = - C to + C, unless otherwise specified) PARAMETER TEST CONDITION SYMBOL MIN. TYP. MAX. UNIT Current transfer ratio ()(2) V O =. V, I F = ma, V CC =. V CTR % V O =. V, I F = ma, T amb = 2 C 2 () Current transfer ratio in percent equals the ratio of output collector current (I O ) to the forward LED input current (I F ) times. (2) A. μf bypass capacitor connected between pins and is recommended. All typical values are measured at T amb = 2 C. SWITCHING CHARACTERISTICS (T amb = - C to + C, unless otherwise specified) PARAMETER TEST CONDITION SYMBOL MIN. TYP. MAX. UNIT Propagation delay time to logic low at output (see fig. and note ) Propagation delay time to logic high at output (see fig. and note ) V CC = V, I F = ma, R L =.9 kω V CC = V, I F = ma, R L =.9 kω t PHL.2 μs t PLH. μs Note () The.9 kω load represents TTL unit load of. ma and the. kω pull-up resistor. All typical values are measured at T amb = 2 C. % duty cycle /f < µs Pulse generator ZO =Ω tr = ns IF = monitor IF RL. µf + V V O CL= pf IF V O t PHL. V tplh V. V VOL Rm 2 Fig. - Test Circuit for Switching Times COMMON MODE TRANSIENT IMMUNITY (T amb = 2 C, unless otherwise specified) PARAMETER TEST CONDITION PART SYMBOL MIN. TYP. MAX. UNIT Common mode transient immunity at logic high level output (see fig. 2 and notes, and 2) Common mode transient immunity at logic low level output (see fig. 2 and notes, and 2) R L =.9 kω, I F = ma, V CM = V P-P VOM2T CM H kv/μs R L =.9 kω, I F = ma, V CM = V P-P VOMT CM H kv/μs R L =.9 kω, I F = ma, V CM = V P-P VOM2T CM L kv/μs R L =.9 kω, I F = ma, V CM = V P-P VOMT CM L kv/μs () Common mode transient immunity in a 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., V O > 2 V). Common mode transient immunity in a logic low level 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 logic low state, i.e., V O >.8 V). (2) The.9 kω load represents TTL unit load of. ma and the. kω pull-up resistor. Rev.., -Oct- Document Number: 887
4 IF RL + V VCM V 9 % 9 % % % VO tr tf B V FF A. µf Switch at A: I F = ma VO 2 V V 2 VCM + VO Switch at B: I F = ma Pulse Generator Fig. 2 - Test Circuit for Transient Immunity and Typical Waveforms VOL.8 V SAFETY AND INSULATION RATINGS PARAMETER TEST CONDITION SYMBOL MIN. TYP. MAX. UNIT Climatic classification according to IEC 8 part //2 Comparative tracking index CTI 7 99 Peak transient overvoltage V IOTM V Peak insulation voltage V IORM 77 V Safety rating - power output P SO mw Safety rating - input current I SI ma Safety rating - temperature T SI 7 C Creepage distance mm Clearance distance mm Pollution degree (DIN VDE ) 2 Isolation resistance V IO = V, T amb = 2 C, R () ISOL R IO 2 Ω V IO = V, T amb = C, R () ISOL R IO Ω As per IEC 77--, , this optocoupler is suitable for safe electrical insulation only within the safety ratings. Compliance with the safety ratings shall be ensured by means of prodective circuits. () Device considered a two-terminal device: pins, and shorted together and pins,, and shorted together. TYPICAL CHARACTERISTICS (T amb = 2 C, unless otherwise specfied) CTR - Current Transfer Ratio (%) 8 2 V CC =. V V O =. V 2 22 I F - Forward Current (ma) I F - LED Current (ma) 2 2 C 2 C 7 C C C - C V F - LED Forward Voltage (V) Fig. - Current Transfer Ratio vs. Forward Current Fig. - LED Current vs. LED Forward Voltage Rev.., -Oct- Document Number: 887
5 I O - Output Current (ma) I F = 2 ma I F = ma I F = ma I F = 2 ma I F = ma Temperature ( C) V CC =. V V O =. V I F = ma Fig. - Output Current vs. Temperature I CCL - Supply Current (µa) I F = ma V CC = V V O = open Fig. 8 - Supply Current vs. Temperature T p - Propagation Delay (ns) I F = ma, V CC = V, R g =.9 kω, C g = pf Duty cycle = %, f = khz t PHL t PLH Fig. - Propagation Delay vs. Temperature V OL - Output Voltage (mv) I F = ma V CC =. V I O = ma I O = 2. ma Fig. 9 - Logic Low Output Voltage vs. Temperature I F = ma I OH - Output Current (na) V CC = V O = V V CC = V O =. V Fig. 7 - Logic High Output Current vs. Temperature Rev.., -Oct- Document Number: 887
6 PACKAGE DIMENSIONS in millimeters ISO Method A R Pin one I.D. (on chamfer side of package) Leads coplanarity. max PACKAGE MARKING (Example of VOM2T) M2 V YWW 8 Rev.., -Oct- Document Number: 887
7 Legal Disclaimer Notice Vishay Disclaimer ALL PRODUCT, PRODUCT SPECIFICATIONS AND DATA ARE SUBJECT TO CHANGE WITHOUT NOTICE TO IMPROVE RELIABILITY, FUNCTION OR DESIGN OR OTHERWISE. Vishay Intertechnology, Inc., 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 in any datasheet or in any other disclosure relating to any product. Vishay makes no warranty, representation or guarantee regarding the suitability of the products for any particular purpose or the continuing production of any product. To the maximum extent permitted by applicable law, Vishay disclaims (i) any and all liability arising out of the application or use of any product, (ii) any and all liability, including without limitation special, consequential or incidental damages, and (iii) any and all implied warranties, including warranties of fitness for particular purpose, non-infringement and merchantability. Statements regarding the suitability of products for certain types of applications are based on Vishay s knowledge of typical requirements that are often placed on Vishay products in generic applications. Such statements are not binding statements about the suitability of products for a particular application. It is the customer s responsibility to validate that a particular product with the properties described in the product specification is suitable for use in a particular application. Parameters provided in datasheets and/or specifications may vary in different applications and performance may vary over time. All operating parameters, including typical parameters, must be validated for each customer application by the customer s technical experts. Product specifications do not expand or otherwise modify Vishay s terms and conditions of purchase, including but not limited to the warranty expressed therein. Except as expressly indicated in writing, Vishay products are not designed for use in medical, life-saving, or life-sustaining applications or for any other application in which the failure of the Vishay product could result in personal injury or death. Customers using or selling Vishay products not expressly indicated for use in such applications do so at their own risk. Please contact authorized Vishay personnel to obtain written terms and conditions regarding products designed for such applications. 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. Product names and markings noted herein may be trademarks of their respective owners. Material Category Policy Vishay Intertechnology, Inc. hereby certifies that all its products that are identified as RoHS-Compliant fulfill the definitions and restrictions defined under Directive 2//EU of The European Parliament and of the Council of June 8, 2 on the restriction of the use of certain hazardous substances in electrical and electronic equipment (EEE) - recast, unless otherwise specified as non-compliant. Please note that some Vishay documentation may still make reference to RoHS Directive 22/9/EC. We confirm that all the products identified as being compliant to Directive 22/9/EC conform to Directive 2//EU. Vishay Intertechnology, Inc. hereby certifies that all its products that are identified as Halogen-Free follow Halogen-Free requirements as per JEDEC JS79A standards. Please note that some Vishay documentation may still make reference to the IEC definition. We confirm that all the products identified as being compliant to IEC conform to JEDEC JS79A standards. Revision: 2-Oct-2 Document Number: 9
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