FOD8480 - Optically Isolated Intelligent Power Module (IPM) Driver In .

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FOD8480, FOD8482Optically IsolatedIntelligent Power Module(IPM) Driver in StretchedBody SOP 6-Pinwww.onsemi.comDescriptionThe FOD8480 and FOD8482 are low power optocouplers, whichsupport isolated interface to Intelligent Power Module (IPM)communicating digital control signals from the controller to the IPM,without conducting ground loops or hazardous voltages.The FOD848x Series, packaged in a stretched body 6 pin smalloutline plastic package, consists of an aluminum gallium arsenide(AlGaAs) light emitting diode and an integrated high gain photodetector. The detector has a detector threshold with hysteresis. Thehysteresis provides differential mode noise immunity and eliminatesthe potential for output signal chatter. Its non inverting output isdesigned as totem pole, which does not require any pull up resistor.The FOD8482 has a lower threshold input current, IFLH, at 3.0 mAmaximum. For the complete FOD848x Series, the Electrical andSwitching Characteristics are guaranteed over the extended industrialtemperature range of 40 C to 100 C and a VDD range of 4.5 V to30 V. Low IF and wide VDD range allow compatibility with TTL,LSTTL, and CMOS logic and result in lower power consumptioncompared to other high speed optocouplers.Features Maximum Threshold Input Current, IFLH,FOD8480 – 5.5 mAFOD8482 – 3.0 mAFOD8480T and FOD8482T 8 mm Creepage and ClearanceDistance, and 0.4 mm Insulation Distance to Achieve Reliable andHigh Voltage InsulationHigh Noise Immunity Characterized by Common Mode TransientImmunity (CMTI)20 kV/ms Minimum CMTIWide Operating Voltage Range, 4.5 V to 30 VSpecifications Guaranteed Over Extended Industrial TemperatureRange, 40 to 100 CSafety and Regulatory Approvals UL1577, 5,000 VACRMS for 1 Min. DIN EN/IEC60747 5 5, 1,140 V Peak Working InsulationVoltageSOIC6SUFFIXCASE 751ELSOIC6 WSUFFIXCASE 751EMMARKING DIAGRAM8480VYYWWP8480 or 8482 Specific Device NumberV DIN EN/IEC60747 5 5 OptionYY Two Digit Year CodeWW Two Digit Work WeekP Assembly Package Code PIN CONNECTIONSTRUTH TABLELEDVoOffLowOnHighTypical Applications Isolating Intelligent Power Module Isolating Industrial Communication Interface Semiconductor Components Industries, LLC, 2019August, 2019 Rev. 1ORDERING INFORMATIONSee detailed ordering, marking and shipping information in thepackage dimensions section on page 10 of this data sheet.1Publication Order Number:FOD8480/D

FOD8480, FOD8482Table 1. SAFETY AND INSULATION RATINGS for Stretched Body SOP 6 PinAs per DIN EN/IEC60747 5 5. This optocoupler is suitable for “safe electrical insulation” only within the safety limit data. Compliancewith the safety ratings shall be ensured by means of protective n Classifications per DIN VDE 0110/1.89 Table 1, for ratedmain voltage 150 VrmsI IVI IVfor rated main voltage 300 VrmsI IVI IVfor rated main voltage 450 VrmsI IIII IVfor rated main voltage 600 VrmsI IIII III40/100/2140/100/2122ParameterSymbolClimatic ClassificationPollution Degree (DIN VDE 0110/1.89)UnitComparative Tracking IndexCTI175175Input to Output Test Voltage, Method b, VIORM*1.875 VPR, 100% Production Test with tm 1 sec,Partial Discharge 5 pCVPR1,6712,137VpeakInput to Output Test Voltage, Method a, VIORM*1.6 VPR, Type andSample Test with tm 10 sec, Partial Discharge 5 pCVPR1,4261,824VpeakMax Working Insulation VoltageVIORM8911,140VpeakHighest Allowable Over VoltageVIOTM6,0008,000VpeakExternal Clearance7.08.0mmExternal Creepage8.08.0mmInsulation 00600150200600 CmAmWInsulation Resistance at TS,VIO 500 VSafety Limit Values Maximum Values allowed in the event of a failure,Case TemperatureInput CurrentOutput Powerwww.onsemi.com2

FOD8480, FOD8482Table 2. ABSOLUTE MAXIMUM RATINGS (TA 25 C unless otherwise specified)ParameterSymbolValueUnitsTSTGStorage Temperature 40 to 125 CTOPROperating Temperature 40 to 100 CJunction Temperature 40 to 125 C260 for 10 sec CTJTSOLLead Solder Temperature (Refer to Reflow Temperature Profile)INPUT CHARACTERISTICSIFAverage Forward Input Current20mAVRReverse Input Voltage5.0VPDIInput Power Dissipation (Notes 1, 3)35mWOUTPUT CHARACTERISTICSVDDSupply Voltage0 to 35VVOOutput Voltage 0.5 to VDDVIOAverage Output Current25mAOutput Power Dissipation (Notes 2, 3)300mWPDOStresses exceeding those listed in the Maximum Ratings table may damage the device. If any of these limits are exceeded, device functionalityshould not be assumed, damage may occur and reliability may be affected.Table 3. RECOMMENDED OPERATING nitAmbient Operating Temperature 40 100 CSupply Voltages (Note 4)4.530V00.8V6.610mA3.67.5mAForward Input Voltage (OFF)Forward Input Current (ON) (Note 5)Functional operation above the stresses listed in the Recommended Operating Ranges is not implied. Extended exposure to stresses beyondthe Recommended Operating Ranges limits may affect device reliability.1. No derating required across operating temperature range.2. Derate linearly from 25 C at a rate of 2.87 mW/ C.3. Functional operation under these conditions is not implied. Permanent damage may occur if the device is subjected to conditions outsidethese ratings.4. 0.1 mF bypass capacitor must be connected between Pin 4 and 6.5. For FOD8480, the initial switching threshold is 5.5 mA or less. It is recommended that 6.6 mA be used to permit at least a 20% CTRdegradation guard band. For FOD8482, the initial switching threshold is 3.0 mA or less. It is recommended that 3.6 mA be used to permitat least a 20% CTR degradation guard band.Table 4. ISOLATION CHARACTERISTICS (Apply over all recommended conditions, typical value is measured at TA 25 C)SymbolParameterConditionsMinTypMaxVISOInput Output Isolation VoltageTA 25 C, R.H. 50%, t 1.0 min,II O 2 mA (Notes 6, 7)5,000RISOIsolation ResistanceVI O 500 V (Note 6)1011WCISOIsolation CapacitanceVI O 0 V, freq 1.0 MHz (Note 6)1.0pFVACRMS6. Device is considered a two terminal device: Pins 1, 2 and 3 are shorted together and Pins 4, 5, and 6 are shorted together.7. 5,000 VACRMS for 1 minute duration is equivalent to 6,000 VACRMS for 1 second duration.www.onsemi.com3Units

FOD8480, FOD8482Table 5. ELECTRICAL CHARACTERISTICS (Apply over all recommended conditions, TA 40 C to 100 C, 4.5 V VDD 30 V,FOD8480: IF(ON) 6 mA to 10 mA, FOD8482: IF(ON) 4 mA to 7 mA, VF(OFF) 0 to 0.8 V, unless otherwise specified. Typical value ismeasured at TA 25 C and VDD 5 INPUT CHARACTERISTICSForward VoltageIF 6 mABVRReverse Breakdown VoltageIR 10 mACINInput CapacitanceVF 0, f 1 MHzVF5.0V60pFInput Diode Temperature CoefficientIF 6 mA 1.4IFLHThreshold Input CurrentLow to HighFOD84802.25.5mAFOD84821.453.0mAIHYSInput Current HysteresisVDD 5 V0.3DVF/DTAmV/ CmAOUTPUT CHARACTERISTICSIDDHLogic High Output SupplyCurrentVDD 5 V, IF 10 mA1.62.5mAVDD 30 V, IF 10 mA1.82.5mAIDDLLogic Low Output SupplyCurrentVDD 5 V, IF 0 mA1.62.5mAVDD 30 V, IF 0 mA1.82.5mAIOSHLogic High Short Circuit OutputCurrentVDD 5.5 V, IF 10 mA, VO GND 80mAVDD 30 V, IF 10 mA, VO GND 80mAIOSLLogic Low Short Circuit OutputCurrentVDD VO 5.5 V, VF 0 V80mAVDD VO 30 V, VF 0 V80mALogic High Output VoltageIOH 2.6 mAVDD 0.1 VDD 0.04VIOH 0.4 mAVDD 0.1 VDD 0.01VVOHVOLLogic Low Output VoltageIOL 6.4 mA, VF 0 V0.5VProduct parametric performance is indicated in the Electrical Characteristics for the listed test conditions, unless otherwise noted. Productperformance may not be indicated by the Electrical Characteristics if operated under different conditions.Table 6. SWITCHING CHARACTERISTICS (Apply over all recommended conditions, TA 40 C to 100 C, 4.5V VDD 30 V,FOD8480: IF(ON) 6 mA to 10 mA, FOD8482: IF(ON) 4 mA to 7 mA, VF(OFF) 0 to 0.8 V, unless otherwise specified. Typical value ismeasured at TA 25 C and VDD 5 V.)SymbolParameterConditionsMinTypMaxUnitsDate Rate1Mbit/stPHLPropagation Delay Time to LogicLow OutputWith peaking capacitor, CL 15 pF130300nstPLHPropagation Delay Time to LogicHigh OutputWith peaking capacitor, CL 15 pF100300nsPWDPulse Width Distortion, tPHL tPLH With peaking capacitor, CL 15 pF250nstPSKPropagation Delay Skew (Note 8)With peaking capacitor, CL 15 pF150nstROutput Rise Time (10% 90%)15nstFOutput Fall Time (90% 10%)10ns CMH Common Mode TransientImmunity at Output HighIF IF(ON),VO 2.0 V, VCM 1000 V,TA 25 C (Note 9)2040kV/ms CML Common Mode TransientImmunity at Output LowIF 0 mA,VO 0.8 V, VCM 1000 V,TA 25 C (Note 9)2040kV/ms8. tPSK is equal to the magnitude of the worst case difference in tPHL and/or tPLH that will be seen between any two units from the samemanufacturing date code that are operated at same case temperature ( 5 C), at same operating conditions, with equal loads (CL 15 pF),and with an input rise time less than 5 ns.9. Common mode transient immunity at output high is the maximum tolerable negative dVcm/dt on the trailing edge of the common modeimpulse signal, Vcm, to assure that the output will remain high. Common mode transient immunity at output low is the maximum tolerablepositive dVcm/dt on the leading edge of the common pulse signal, Vcm, to assure that the output will remain low.www.onsemi.com4

FOD8480, FOD8482TYPICAL CHARACTERISTICSFigure 1. Typical Logic Low Output Voltage vs.TemperatureFigure 2. Typical Logic High Output Currentvs. TemperatureFigure 3. Typical Output Voltage vs. ForwardInput Current (FOD8480)Figure 4. Typical Output Voltage vs. ForwardInput Current (FOD8482)Figure 5. Typical Input Diode ForwardCharacteristicFigure 6. Typical Propagation Delay vs.Temperaturewww.onsemi.com5

FOD8480, FOD8482TYPICAL CHARACTERISTICSFigure 7. Typical Logic High Output Voltagevs. Supply VoltageFigure 8. Typical Propagation Delay vs. SupplyVoltageFigure 9. VOH vs. IOH Across TemperaturesFigure 10. VOL vs. IOL Across Temperatureswww.onsemi.com6

FOD8480, FOD8482Figure 11. Test Circuit for Propagation Delay, Rise Time and Fall Timewww.onsemi.com7

FOD8480, FOD8482Figure 12. Test Circuit for Instantaneous Common Mode Rejection Voltagewww.onsemi.com8

FOD8480, FOD8482Reflow ProfileTemperature (5C)TP260240TL22020018016014012010080604020Maximum Ramp up Rate 3 C/sMaximum Ramp down Rate 6 C/stPTsmaxtLPreheat AreaTsmints0120240360Time 25 C to PeakTime (seconds)Profile FreaturePb Free Assembly ProfileTemperature Minimum (Tsmin)150 CTemperature Maximum (Tsmax)200 CTime (tS) from (Tsmin to Tsmax)60 s to 120 sRamp up Rate (tL to tP)3 C/second maximumLiquidous Temperature (T L)217 CTime (tL) Maintained Above (T L)60 s to 150 s260 C 0 C / 5 CPeak Body Package TemperatureTime (tP) within 5 C of 260 C30 sRamp Down Rate (TP to TL)6 C/s maximumTime 25 C to Peak Temperature8 minutes maximumFigure 13. Reflow Profilewww.onsemi.com9

FOD8480, FOD8482ORDERING INFORMATIONPart NumberPackagePacking MethodFOD8480Stretched Body SOP 6 PinTube (100 units per tube)FOD8480R2Stretched Body SOP 6 PinTape and Reel (1,000 units per reel)FOD8480VStretched Body SOP 6 Pin,DIN EN/IEC60747 5 5 OptionTube (100 units per tube)FOD8480R2VStretched Body SOP 6 Pin,DIN EN/ IEC60747 5 5 OptionTape and Reel (1,000 units per reel)FOD8480TStretched Body SOP 6 Pin, Wide LeadTube (100 units per tube)FOD8480TR2Stretched Body SOP 6 Pin, Wide LeadTape and Reel (1,000 units per reel)FOD8480TVStretched Body SOP 6 Pin, Wide Lead,DIN EN/IEC60747 5 5 OptionTube (100 units per tube)FOD8480TR2VStretched Body SOP 6 Pin, Wide Lead,DIN EN/ IEC60747 5 5 OptionTape and Reel (1,000 units per reel)*All packages are lead free per JEDEC: J STD 020B standard.www.onsemi.com10

MECHANICAL CASE OUTLINEPACKAGE DIMENSIONSSOIC6CASE 751ELISSUE ODOCUMENT NUMBER:DESCRIPTION:98AON13745GSOIC6DATE 30 SEP 2016Electronic versions are uncontrolled except when accessed directly from the Document Repository.Printed versions are uncontrolled except when stamped “CONTROLLED COPY” in red.PAGE 1 OF 1ON Semiconductor andare trademarks of Semiconductor Components Industries, LLC dba ON Semiconductor or its subsidiaries in the United States and/or other countries.ON Semiconductor reserves the right to make changes without further notice to any products herein. ON Semiconductor makes no warranty, representation or guarantee regardingthe suitability of its products for any particular purpose, nor does ON Semiconductor assume any liability arising out of the application or use of any product or circuit, and specificallydisclaims any and all liability, including without limitation special, consequential or incidental damages. ON Semiconductor does not convey any license under its patent rights nor therights of others. Semiconductor Components Industries, LLC, 2019www.onsemi.com

MECHANICAL CASE OUTLINEPACKAGE DIMENSIONSSOIC6 WCASE 751EMISSUE ODOCUMENT NUMBER:DESCRIPTION:98AON13749GSOIC6 WDATE 30 SEP 2016Electronic versions are uncontrolled except when accessed directly from the Document Repository.Printed versions are uncontrolled except when stamped “CONTROLLED COPY” in red.PAGE 1 OF 1ON Semiconductor andare trademarks of Semiconductor Components Industries, LLC dba ON Semiconductor or its subsidiaries in the United States and/or other countries.ON Semiconductor reserves the right to make changes without further notice to any products herein. ON Semiconductor makes no warranty, representation or guarantee regardingthe suitability of its products for any particular purpose, nor does ON Semiconductor assume any liability arising out of the application or use of any product or circuit, and specificallydisclaims any and all liability, including without limitation special, consequential or incidental damages. ON Semiconductor does not convey any license under its patent rights nor therights of others. Semiconductor Components Industries, LLC, 2019www.onsemi.com

onsemi,, and other names, marks, and brands are registered and/or common law trademarks of Semiconductor Components Industries, LLC dba “onsemi” or its affiliatesand/or subsidiaries in the United States and/or other countries. onsemi owns the rights to a number of patents, trademarks, copyrights, trade secrets, and other intellectual property.A listing of onsemi’s product/patent coverage may be accessed at www.onsemi.com/site/pdf/Patent Marking.pdf. onsemi reserves the right to make changes at any time to anyproducts or information herein, without notice. The information herein is provided “as is” and onsemi makes no warranty, representation or guarantee regarding the accuracy of theinformation, product features, availability, functionality, or suitability of its products for any particular purpose, nor does onsemi assume any liability arising out of the application or useof any product or circuit, and specifically disclaims any and all liability, including without limitation special, consequential or incidental damages. Buyer is responsible for its productsand applications using onsemi products, including compliance with all laws, regulations and safety requirements or standards, regardless of any support or applications informationprovided by onsemi. “Typical” parameters which may be provided in onsemi data sheets and/or specifications can and do vary in different applications and actual performance mayvary over time. All operating parameters, including “Typicals” must be validated for each customer application by customer’s technical experts. onsemi does not convey any licenseunder any of its intellectual property rights nor the rights of others. onsemi products are not designed, intended, or authorized for use as a critical component in life support systemsor any FDA Class 3 medical devices or medical devices with a same or similar classification in a foreign jurisdiction or any devices intended for implantation in the human body. ShouldBuyer purchase or use onsemi products for any such unintended or unauthorized application, Buyer shall indemnify and hold onsemi and its officers, employees, subsidiaries, affiliates,and distributors harmless against all claims, costs, damages, and expenses, and reasonable attorney fees arising out of, directly or indirectly, any claim of personal injury or deathassociated with such unintended or unauthorized use, even if such claim alleges that onsemi was negligent regarding the design or manufacture of the part. onsemi is an EqualOpportunity/Affirmative Action Employer. This literature is subject to all applicable copyright laws and is not for resale in any manner.PUBLICATION ORDERING INFORMATIONLITERATURE FULFILLMENT:Email Requests to: orderlit@onsemi.comonsemi Website: www.onsemi.com TECHNICAL SUPPORTNorth American Technical Support:Voice Mail: 1 800 282 9855 Toll Free USA/CanadaPhone: 011 421 33 790 2910Europe, Middle East and Africa Technical Support:Phone: 00421 33 790 2910For additional information, please contact your local Sales Representative

support isolated interface to Intelligent Power Module (IPM) communicating digital control signals from the controller to the IPM, . Input to Output Test Voltage, Method b, VIORM*1.875 VPR, 100% Pro-duction Test with tm 1 sec,Partial Discharge 5 pC VPR 1,671 2,137 Vpeak

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