ACPL-M43T Automotive Wide Operating Temperature 1MBd Digital Optocoupler in a 5-Pin Surface Mount Plastic Package. Features. Applications.

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1 ACPL-M43T Automotive Wide Operating Temperature MBd Digital Optocoupler in a -Pin Surface Mount Plastic Package Data Sheet Lead (Pb) Free RoHS 6 fully compliant RoHS 6 fully compliant options available; -xxxe denotes a lead-free product Description The ACPL-M43T is a single channel, high temperature, high CMR, high speed digital optocoupler in a five lead miniature footprint specifically used in the automotive applications. The SO- JEDEC registered (MO-) package outline does not require through holes in a PCB. This package occupies approximately one-fourth the footprint area of the standard dual-in-line package. The lead profile is designed to be compatible with standard surface mount processes. This digital optocoupler uses an insulating layer between the light emitting diode and an integrated photon detector to provide electrical insulation between input and output. Separate connections for the photodiode bias and output transistor collector increase the speed up to a hundred times over that of a conventional photo-transistor coupler by reducing the base-collector capacitance. The ACPL-M43T has an increased common mode transient immunity of 3kV/µs minimum at V CM = V over extended temperature range. Functional Diagram + ANODE I F I CC 6 V CC Features High Temperature and Reliability IPM Driver for Automotive Application. 3 kv/µs High Common-Mode Rejection at V CM = V (typ) Compact, Auto-Insertable SO Packages Wide Temperature Range: -4 C ~ 2 C High Speed: MBd (Typ) Low LED Drive Current: ma (typ) Low Propagation Delay: 3ns (typ) Worldwide Safety Approval: UL77 recognized, 37Vrms/min CSA Approved IEC/EN/DIN EN Approved Applications Automotive IPM Driver for DC-DC converters and motor inverters CANBus Communications Interface High Temperature Digital/Analog Signal Isolation Power Transistor Isolation V F - CATHODE 3 IO SHIELD 4 GND Note: The connection of a. µf bypass capacitor between pins 4 and 6 is recommended. Truth Table LED Vo ON LOW OFF HIGH CAUTION: It is advised that normal static precautions be taken in handling and assembly of this component to prevent damage and/or degradation which may be induced by ESD.

2 Ordering Information Part number RoHS Compliant Option Non RoHS Compliant Package Surface Mount Gull Wing Tape & Reel UL Vrms / Minute rating IEC/EN/DIN EN Quantity ACPL-M43T -E No option SO- X per tube -E - X X per reel To order, choose a part number from the part number column and combine with the desired option from the option column to form an order entry. Example : ACPL-M43T-E to order product of Mini-flat Surface Mount -pin package in Tape and Reel packaging with RoHS compliant. Example 2: ACPL-M43T to order product of Mini-flat Surface Mount -pin package in tube packaging and non RoHS compliant. Option datasheets are available. Contact your Avago sales representative or authorized distributor for information. Remarks: The notation #XXX is used for existing products, while (new) products launched since th July 2 and RoHS compliant option will use -XXXE. Package Outline Drawings ACPL-M43T Small Outline SO- Package (JEDEC MO-) Extended Datecode for lot tracking 4.4 ±. (.73 ±.4) M43T YWW EE 7. ±.2 (.276 ±.8) ANODE CATHODE V CC UT GND.4 ±. (.6 ±.2) 3.6 ±.* (.42 ±.4) 2. ±. (.98 ±.4).2 ±.2 (.4 ±.4).2 ±.2 (.8 ±.).27 (.) BSC.7 (.28) MIN. 7 o MAX. DIMENSIONS IN MILLIMETERS (INCHES) * MAXIMUM MOLD FLASH ON EACH SIDE IS. mm (.6) NOTE: FLOATING LEAD PROTRUSION IS. mm (6 mils) MAX. MAX. LEAD COPLANARITY =.2 (.4)

3 Land Pattern Recommendation 4.4 (.7) 2. (.).3 (.) 2. (.8) 8.27 (.32).64 (.2) DIMENSIONS IN MILLIMETERS AND (INCHES) Solder Reflow Temperature Profile TEMPERATURE ( C) 3 2 PREHEATING RATE 3 C + C/-. C/SEC. REFLOW HEATING RATE 2. C ±. C/SEC. 6 C C 4 C 3 C + C/-. C 2. C ±. C/SEC. PEAK TEMP. 24 C 3 SEC. 3 SEC. SOLDERING TIME 2 C PEAK TEMP. 24 C PEAK TEMP. 23 C PREHEATING TIME C, SEC. SEC. ROOM TEMPERATURE TIGHT TYPICAL LOOSE 2 2 Note: Non-halide flux should be used. Recommended Pb-Free IR Profile TIME (SECONDS) TEMPERATURE T p T L T smax T smin 27 C RAMP-UP 3 C/SEC. MAX. - 2 C t s PREHEAT 6 to 8 SEC. 26 +/- C t p t L TIME WITHIN C of ACTUAL PEAK TEMPERATURE 2-4 SEC. RAMP-DOWN 6 C/SEC. MAX. 6 to SEC. 2 t 2 C to PEAK TIME NO TES: THE TIME FROM 2 C to PEAK TEMPERATURE = 8 MINUTES MAX. T smax = 2 C, T smin = C Note: Non-halide flux should be used.

4 Regulatory Information The ACPL-M43T is approved by the following organizations: UL Approved under UL 77, component recognition program up to V ISO = 37 V RMS expected prior to product release.. CSA Approved under CSA Component Acceptance Notice #. IEC/EN/DIN EN Approved under: IEC :997 + A EN :2 + A DIN EN (VDE 884 Teil 2) IEC/EN/DIN EN Insulation Characteristics* Description Symbol Characteristic Unit Installation classification per DIN VDE /.89, Table for rated mains voltage V rms for rated mains voltage 3 Vrms for rated mains voltage 6 V rms I IV I III I II Climatic Classification /2/2 Pollution Degree (DIN VDE /.89) 2 Maximum Working Insulation Voltage V IORM 67 V peak Input to Output Test Voltage, Method b* V IORM x.87=v PR, % Production Test with t m = sec, Partial discharge < pc Input to Output Test Voltage, Method a* V IORM x.=v PR, Type and Sample Test, t m =6 sec, Partial discharge < pc V PR 63 V peak V PR 8 V peak Highest Allowable Overvoltage (Transient Overvoltage t ini = sec) V IOTM 6 V peak Safety-limiting values maximum values allowed in the event of a failure. Case Temperature Input Current Output Power T S I S, INPUT P S, OUTPUT Insulation Resistance at T S, V IO = V RS > 9 W C ma mw * Refer to the optocoupler section of the Isolation and Control Components Designer s Catalog, under Product Safety Regulations section, (IEC/EN/DIN EN ) for a detailed description of Method a and Method b partial discharge test profiles. Insulation and Safety Related Specifications Parameter Symbol ACPL-M43T Units Conditions Minimum External Air Gap (Clearance) Minimum External Tracking (Creepage) Minimum Internal Plastic Gap (Internal Clearance) Tracking Resistance (Comparative Tracking Index) Isolation Group (DIN VDE9) L() mm Measured from input terminals to output terminals, shortest distance through air. L(2) mm Measured from input terminals to output terminals, shortest distance path along body..8 mm Through insulation distance conductor to conductor, usually the straight line distance thickness between the emitter and detector. CTI 7 V DIN IEC 2/VDE 33 Part IIIa Material Group (DIN VDE 9)

5 Absolute Maximum Ratings Parameter Symbol Min. Max. Units Note Storage Temperature T S - C Operating Temperature T A -4 2 C Lead Soldering Cycle Temperature 26 C Time s Average Forward Input Current I F(avg) 2 ma Peak Forward Input Current (% duty cycle, ms pulse width) Peak Transient Input Current (<= us pulse width, 3ps) I F(peak) 4 ma 2, I F(trans) ma Reversed Input Voltage V R V Pin 3 - Input Power Dissipation P IN 3 mw 3 Output Power Dissipation P O mw 4 Average Output Current I O 8 ma Peak Output Current Io(pk) 6 ma Supply Voltage (Pins 6-4) V CC -. 3 V Output Voltage (Pins -4) -. 2 V Solder Reflow Temperature Profile See Reflow Temperature Profile Recommended Operating Conditions Parameter Symbol Min. Max. Units Note Supply Voltage V CC 4.. V Operating Temperature T A -4 2 C

6 Electrical Specifications (DC) Over recommended operating T A = -4 C to 2 C, unless otherwise specified. Parameter Sym. Min. Typ. Max. Units Conditions Fig. Note Current Transfer Ratio Logic Low Output Voltage Logic High Output Current Logic Low Supply Current Logic High Supply Current Input Forward Voltage Input Reversed Breakdown Voltage Temperature Coefficient of Forward Voltage CTR % T A =2 C Vo=.4V Vcc=4.V 2 4 % Vo=.V I F =ma L..4 V T A =2 C Io=3mA. V Io=2.4mA I OH.3. ma T A =2 C Vo=Vcc=.V I F =ma 7. ma T A =2 C Vo=Vcc=V ma I CCL 2 ma I F =ma, Vo=open, Vcc=V I CCH.2 ma T A =2 C I F =ma, Vo=open, 2. ma Vcc=V V F.4..8 V T A =2 C I F =ma V I F =ma BV R V I R =ma DV/ -. mv/ C I F =ma DT A Input Capacitance C IN 9 pf F=MHz, V F = Input-Output Insulation Resistance (Input-Output) V ISO 37 V RMS RH %, t=min, T A =2 C,2,4 R I-O 2 W V I-O = V DC 6 6,7 Capacitance (Input-Output) C I-O.6 pf F=MHz 6

7 Switching Specifications (AC) Over recommended operating (T A = -4 C to 2 C), I F = ma, V CC =. V unless otherwise specified. Parameter Symbol Min Typ Max Units Test Conditions Fig. Note Propagation Delay Time to Logic Low at Output Propagation Delay Time to Logic High at Output Pulse Width Distortion Propagation Delay Difference Between Any 2 Parts Common Mode Transient Immunity at Logic High Output Common Mode Transient Immunity at Logic Low Output T PHL µs T A =2 C Pulse: f=khz, Duty cycle =%,.6. µs I F = ma, V CC =. V, R L =.9kW, C L = pf V THHL =.V T PLH..3.8 µs T A =2 C Pulse: f=khz, Duty cycle =%,.3. µs I F = ma, V CC =. V, R L =.9kW C L = pf V THLH =2.V PWD.4. 4 µs T A =2 C Pulse: f=khz, Duty cycle =%,.8 µs I F =ma, V CC =.V, R L =.9kW, C L =pf, V THHL =.V, V THLH =2.V t PLH -t PHL.4. µs T A =2 C Pulse: f=khz, Duty cycle =%,.9 µs I F =ma, V CC =.V, R L =.9kW, C L =pf, V THHL =.V, V THLH =2.V CM H 3 kv/μs V CM =Vp-p, I F =ma, T A =2 C, R L =.9kW CM L 3 kv/μs V CM =Vp-p, I F =ma, T A =2 C, R L =.9kW,6, 8,6, , 9 Package Characteristics *The Input-Output Momentary Withstand Voltage is a dielectric voltage rating that should not be interpreted as an input-output continuous voltage rating. Parameter Symbol Min. Typ. Max. Units Test Conditions Fig. Note Input-Output Momentary Withstand Voltage* V ISO 37 Vrms RH %, t = min; T A = 2 C Input-Output Resistance R I-O 2 W V I-O = Vdc 6 Input-Output Capacitance C I-O.6 pf f = MHz; V I-O = Vdc 6 Notes:. Derate linearly above 8 C free-air temperature at a rate of.2 ma/ C. 2. Derate linearly above 8 C free-air temperature at a rate of.3 ma/ C. 3. Derate linearly above 8 C free-air temperature at a rate of.37 mw/ C. 4. Derate linearly above 8 C free-air temperature at a rate of.87 mw/ C.. CURRENT TRANSFER RATIO in percent is defined as the ratio of output collector current, I O, to the forward LED input current, I F, times. 6. Device considered a two terminal device: pins and 3 shorted together, and pins 4, and 6 shorted together. 7. In accordance with UL 77, each optocoupler is proof tested by applying an insulation test voltage 4 V RMS for second (leakage detection current limit, I I-O µa). 8. Common transient immunity in a Logic High level is the maximum tolerable (positive) dv CM /dt on the rising edge of the common mode pulse, V CM, to assure that the output will remain in a Logic High state (i.e., > 2. V). Common mode transient immunity in a Logic Low level is the maximum tolerable (negative) dvcm/dt on the falling edge of the common mode pulse signal, V CM to assure that the output will remain in a Logic Low state (i.e., <.8 V). 9. The.9 kω load represents TTL unit load of.6 ma and the.6 kω pull-up resistor.. The frequency at which the ac output voltage is 3 db below its mid-frequency value.. Use of a. µf bypass capacitor connected between pins 4 and 6 is recommended. 2. Pulse Width Distortion (PWD) is defined as t PHL - t PLH for any given device. 3. The difference between t PLH and t PHL between any two parts under the same test condition. 6, 7

8 IO - OUTPUT CURRENT - ma V CC =.V T A = 2 o C 2 VO - OUTPUT VOLTAGE - V Figure. DC and Pulsed Transfer Characteristics. 4mA 3mA 3mA 2mA 2mA ma ma I F =ma NORMALIZED CURRENT TRANSFER RATIO Normalized I F = ma =.4V V CC = V T A = 2 o C. I F - INPUT CURRENT - ma Figure 2. Current Transfer Ratio vs Input Current IF - FORWARD CURRENT - ma.. T A = 2 o C VF - Forward Voltage - VOLTS Figure 3. Input Current vs Forward Voltage NORMALIZED CURRENT TRANSFER RATIO...9 Normalized.8 I F = ma, =.4V.7 V CC =.V T A = 2 o C TA - TEMPERATURE - o C Figure 4. Current Transfer Ratio vs Temperature TP - PROPOGATION DELAY - ns TpLH TpHL I F =ma, V CC =.V R L=.9k tp - Propogation Delay - us V CC =. V, T A = 2 o C C L = pf, R L =.9 kω V THHL =.V V THLH = 2.V, % Duty Cycle I F = ma T PLH TA - TEMPERATURE - o C Figure. Propagation Delay vs Temperature R L - Load Resistance - kohm Figure 6. Propagation Delay Time vs Load Resistance T PHL

9 I OH - LOGIC HIGH OUTPUT CURRENT - na I F = ma = V CC =.V TA - TEMPERATURE - o C Figure 7. Logic High Output Current vs Temperature. I F PULSE GEN. Z O = Ω t r = ns I F 6 + V V % DUTY CYCLE /f µs R L t PHL. V. V L t PLH I F MONITOR Ω 3 4.µF C L = pf Figure 8. Switching Test Circuit V CM V V t r % t r, t f = 6 ns 9% 9% % tf I F B A 6 R L V CC SWITCH AT A: I = ma F V V FF 3 4.µF SWITCH AT B: I =.6 ma F L V CM + - PULSE GEN. Figure 9. Test Circuit for Transient Immunity and Typical Waveforms. For product information and a complete list of distributors, please go to our web site: Avago, Avago Technologies, and the A logo are trademarks of Avago Technologies, Limited in the United States and other countries. Data subject to change. Copyright 28 Avago Technologies Limited. All rights reserved. Obsoletes AV-48EN AV2-6EN - February, 28

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