Power Management & Multimarket

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1 LED Driver BCR 42U E6327 / BCR 421U E6327 Datasheet Revision 2.1, Power Management & Multimarket

2 Edition Published by Infineon Technologies AG Munich, Germany 215 Infineon Technologies AG All Rights Reserved. Legal Disclaimer The information given in this document shall in no event be regarded as a guarantee of conditions or characteristics. With respect to any examples or hints given herein, any typical values stated herein and/or any information regarding the application of the device, Infineon Technologies hereby disclaims any and all warranties and liabilities of any kind, including without limitation, warranties of noninfringement of intellectual property rights of any third party. Information For further information on technology, delivery terms and conditions and prices, please contact the nearest Infineon Technologies Office ( Warnings Due to technical requirements, components may contain dangerous substances. For information on the types in question, please contact the nearest Infineon Technologies Office. Infineon Technologies components may be used in lifesupport devices or systems only with the express written approval of Infineon Technologies, if a failure of such components can reasonably be expected to cause the failure of that lifesupport device or system or to affect the safety or effectiveness of that device or system. Life support devices or systems are intended to be implanted in the human body or to support and/or maintain and sustain and/or protect human life. If they fail, it is reasonable to assume that the health of the user or other persons may be endangered.

3 Revision History Page or Item Subjects (major changes since previous revision) Revision 2.1, All Using full sales names BCR 42U E6327 / BCR 421U E6327 instead of short form BCR42U / BCR421U Page 7 Halogen free logo removed Trademarks of Infineon Technologies AG AURIX, C166, CanPAK, CIPOS, CIPURSE, EconoPACK, CoolMOS, CoolSET, CORECONTROL, CROSSAVE, DAVE, DIPOL, EasyPIM, EconoBRIDGE, EconoDUAL, EconoPIM, EconoPACK, EiceDRIVER, eupec, FCOS, HITFET, HybridPACK, I²RF, ISOFACE, IsoPACK, MIPAQ, ModSTACK, myd, NovalithIC, OptiMOS, ORIGA, POWERCODE ; PRIMARION, PrimePACK, PrimeSTACK, PROSIL, PROFET, RASIC, ReverSave, SatRIC, SIEGET, SINDRION, SIPMOS, SmartLEWIS, SOLID FLASH, TEMPFET, thinq!, TRENCHSTOP, TriCore. Other Trademarks Advance Design System (ADS) of Agilent Technologies, AMBA, ARM, MULTIICE, KEIL, PRIMECELL, REALVIEW, THUMB, µvision of ARM Limited, UK. AUTOSAR is licensed by AUTOSAR development partnership. Bluetooth of Bluetooth SIG Inc. CATiq of DECT Forum. COLOSSUS, FirstGPS of Trimble Navigation Ltd. EMV of EMVCo, LLC (Visa Holdings Inc.). EPCOS of Epcos AG. FLEXGO of Microsoft Corporation. FlexRay is licensed by FlexRay Consortium. HYPERTERMINAL of Hilgraeve Incorporated. IEC of Commission Electrotechnique Internationale. IrDA of Infrared Data Association Corporation. ISO of INTERNATIONAL ORGANIZATION FOR STANDARDIZATION. MATLAB of MathWorks, Inc. MAXIM of Maxim Integrated Products, Inc. MICROTEC, NUCLEUS of Mentor Graphics Corporation. MIPI of MIPI Alliance, Inc. MIPS of MIPS Technologies, Inc., USA. murata of MURATA MANUFACTURING CO., MICROWAVE OFFICE (MWO) of Applied Wave Research Inc., OmniVision of OmniVision Technologies, Inc. Openwave Openwave Systems Inc. RED HAT Red Hat, Inc. RFMD RF Micro Devices, Inc. SIRIUS of Sirius Satellite Radio Inc. SOLARIS of Sun Microsystems, Inc. SPANSION of Spansion LLC Ltd. Symbian of Symbian Software Limited. TAIYO YUDEN of Taiyo Yuden Co. TEAKLITE of CEVA, Inc. TEKTRONIX of Tektronix Inc. TOKO of TOKO KABUSHIKI KAISHA TA. UNIX of X/Open Company Limited. VERILOG, PALLADIUM of Cadence Design Systems, Inc. VLYNQ of Texas Instruments Incorporated. VXWORKS, WIND RIVER of WIND RIVER SYSTEMS, INC. ZETEX of Diodes Zetex Limited. Last Trademarks Update Datasheet 3 Revision 2.1,

4 Table of Contents Table of Contents Table of Contents List of Figures List of Tables LED Driver Features Applications General Description Electrical Characteristics Typical characteristics Application hints Package Terminology Datasheet 4 Revision 2.1,

5 List of Figures List of Figures Figure 11 Pin configuration and typical application Figure 31 Total Power Dissipation P tot = f(t S ) Figure 32 Permissible Pulse Load R thjs = f(t p ) Figure 33 Permissible Pulse Load P totmax / P totdc = f(t p ) Figure 34 BCR 42U: Output Current versus V out I out = f(v out ), V EN = 4 V, R ext = Parameter Figure 35 BCR 42U: Output Current versus R ext I out = f(r ext ), V EN = 4 V, V out = Parameter Figure 36 BCR 42U: Output Current versus V out I out = f(v out ), V EN = 4 V, R ext = open, T A = Parameter Figure 37 BCR 42U: Output Current versus V out I out = f(v out ), V EN = 4 V, R ext = 2 Ω, T A = Parameter Figure 38 BCR 42U: Output Current versus V out I out = f(v out ), V EN = 4 V, R ext = 6 Ω, T A = Parameter Figure 39 BCR 42U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = open, T A = Parameter Figure 31 BCR 42U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = 2 Ω, T A = Parameter Figure 311 BCR 42U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = 6 Ω, T A = Parameter Figure 312 BCR 42U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = Parameter Figure 313 BCR 42U: Enable Current versus V EN I EN = f(v EN ), R ext = open, I out = A, T A = Parameter Figure 314 BCR 421U: Output Current versus V out I out = f(v out ), V EN = 3.3 V, R ext = Parameter Figure 315 BCR 421U: Output Current versus R ext I out = f(r ext ), V EN = 3.3 V, V out = Parameter Figure 316 BCR 421U: Output Current versus V out I out = f(v out ), V EN = 3.3 V, R ext = open, T A = Parameter Figure 317 BCR 421U: Output Current versus V out I out = f(v out ), V EN = 3.3 V, R ext = 2 Ω, T A = Parameter Figure 318 BCR 421U: Output Current versus V out I out = f(v out ), V EN = 3.3 V, R ext = 6 Ω, T A = Parameter Figure 319 BCR 421U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = open, T A = Parameter Figure 32 BCR 421U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = 2 Ω, T A = Parameter Figure 321 BCR 421U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = 6 Ω, T A = Parameter Figure 322 BCR 421U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = Parameter Figure 323 BCR 421U: Enable Current versus V EN I EN = f(v EN ), R ext = open, I out = A, T A = Parameter Figure 41 Application Circuit: Enabling / PWM by Micro Controller Figure 42 Application Circuit: Enabling by Connecting to V S Figure 51 Package Outline for SC74 (dimensions in mm) Figure 52 Package Footprint for SC74 (dimensions in mm) Figure 53 Tape and Reel Information for SC74 (dimensions in mm) Datasheet 5 Revision 2.1,

6 List of Tables List of Tables Table 21 Maximum Ratings at T A =, unless otherwise specified Table 22 Thermal Resistance at T A =, unless otherwise specified Table 23 Electrical Characteristics at T A =, unless otherwise specified Table 24 DC Characteristics with stabilized LED load at T A =, unless otherwise specified Datasheet 6 Revision 2.1,

7 LED Driver 1 LED Driver 1.1 Features LED drive current preset to 1 ma Continuous output current up to 15 ma with an external resistor Easy paralleling of drivers to increase current Supply voltage up to 4 V Low side current control Digital PWM input up to 1 khz frequency (BCR 421U E6327) Up to 1 W power dissipation in a small SC74 package Negative thermal coefficient of.2 %/K reduces output current at higher temperatures RoHS compliant (Pbfree) package Automotive qualified according AEC Q11 SC743D 1.2 Applications Architectural LED lighting Channel letters for advertising, LED strips for decorative lighting Retail lighting in fridge, freezer case and vending machines Emergency lighting (e.g. steps lighting, exit way signs etc.) 1.3 General Description The BCR 42U E6327 / BCR 421U E6327 provides a lowcost solution for driving.25 W LEDs with a typical LED current of 75 ma to 15 ma. Internal breakdown voltage is higher than 4 V which is the maximum voltage the LED driver can sustain when the output is directly connected to supply voltage. The BCR 42U E6327 / BCR 421U E6327 can be operated with a supply voltage of more than 4 V considering the voltage drop of the LED load which reduces the output voltage to the maximum rating of the driver. The enable pin of BCR 42U E6327 can withstand a maximum voltage of 4 V which can be increased adding a series resistor in front of the enable pin reducing the voltage at the enable pin below 4 V. The digital input pin of BCR 421U E6327 allows dimming via a micro controller with frequencies up to 1 khz. A reduction of the output current at higher temperatures is the result of the negative temperature coefficient of.2 %/K of the LED driver. With no need for additional external components like inductors, capacitors and free wheeling diodes, the BCR 42U E6327 / BCR 421U E6327 LED drivers are a costefficient and PCBarea saving solution for driving.25 W LEDs. Datasheet 7 Revision 2.1,

8 LED Driver Pin Configuration Typical Application +V S EN 1 6 R ext I EN I out OUT 2 5 OUT EN 1 OUT 2,3,5 OUT 3 4 GND 6 R ext 4 BCR 42 U E6327 R ext (optional ) GND V drop Figure 11 Pin configuration and typical application Sales Name Marking Pin Configuration Package BCR 42U E = EN 2; 3; 5 = OUT 4 = GND 6 = R ext SC74 BCR 421U E = EN 2; 3; 5 = OUT 4 = GND 6 = R ext SC74 Datasheet 8 Revision 2.1,

9 Electrical Characteristics 2 Electrical Characteristics Table 21 Maximum Ratings at T A =, unless otherwise specified Parameter Symbol Values Unit Note / Test Condition Min. Typ. Max. Enable voltage BCR 42U E6327 BCR 421U E6327 V EN Output current I out 2 ma Output voltage V out 4 V Reverse voltage between all terminals V R.5 V Total power dissipation P tot 1 mw T S 1 C Junction temperature T J 15 C Storage temperature range T STG C Attention: Stresses above the max. values listed here may cause permanent damage to the device. Exposure to absolute maximum rating conditions for extended periods may affect device reliability. Maximum ratings are absolute ratings; exceeding only one of these values may cause irreversible damage to the integrated circuit V Table 22 Thermal Resistance at T A =, unless otherwise specified Parameter Symbol Values Unit Note / Test Condition Min. Typ. Max. Junction soldering point 1) R thjs 5 K/W 1) For calculation of R thja please refer to Application Note AN77 (Thermal Resistance Calculation) Table 23 Electrical Characteristics at T A =, unless otherwise specified Parameter Symbol Values Unit Note / Test Condition Min. Typ. Max. Collectoremitter breakdown voltage V BR(CEO) 4 V I C =1mA, I B = Enable current BCR 42U E6327 BCR 421U E6327 I EN ma V EN =24V V EN =3.3V DC current gain h FE I C =5mA, V CE =1V Internal resistor R int Ω I Rint =1mA Bias resistor BCR 42U E6327 BCR 421U E6327 R B kω Datasheet 9 Revision 2.1,

10 Electrical Characteristics Table 23 Electrical Characteristics at T A =, unless otherwise specified (cont d) Parameter Symbol Values Unit Note / Test Condition Min. Typ. Max. Output current BCR 42U E6327 BCR 421U E6327 Output current at R ext =5.1Ω BCR 42U E6327 BCR 421U E6327 I out ma V out =1.4V V EN =24V V EN =3.3V V out >2.V V EN =24V V EN =3.3V Voltage drop (V Rext ) V drop V I out =1mA Table 24 DC Characteristics with stabilized LED load at T A =, unless otherwise specified Parameter Symbol Values Unit Note / Test Condition Min. Typ. Max. Lowest sufficient supply voltage overhead V Smin 1.4 V I out >18mA Output current change versust A BCR 42U E6327 BCR 421U E6327 Output current change versus V S BCR 42U E6327 BCR 421U E6327 I out /I out I out /I out %/K %/V V out >2.V V EN =24V V EN =3.3V V out >2.V V EN =24V V EN =3.3V Datasheet 1 Revision 2.1,

11 Typical characteristics 3 Typical characteristics P tot [mw] T S [ C] Figure 31 Total Power Dissipation P tot = f(t S ) 1 R thjs [K/W] 1 D = D =.5 1 D =.1 D =.2 D =.5 D =.1 D =.2 D = t p [s] Figure 32 Permissible Pulse Load R thjs = f(t p ) Datasheet 11 Revision 2.1,

12 Typical characteristics P totmax / P totdc D = D =.5 D =.1 D =.2 D =.5 D =.1 D =.2 D = t p [s] Figure 33 Permissible Pulse Load P totmax / P totdc = f(t p ) Datasheet 12 Revision 2.1,

13 Typical characteristics.2.15 R ext = 6 Ω.1 R ext = 8 Ω R ext = 1 Ω R ext = 15 Ω.5 R ext = 3 Ω R ext = open V out [V] Figure 34 BCR 42U: Output Current versus V out I out = f(v out ), V EN = 4 V, R ext = Parameter V out = 1.4 V V out = 5.4 V R ext [Ω] Figure 35 BCR 42U: Output Current versus R ext I out = f(r ext ), V EN = 4 V, V out = Parameter Datasheet 13 Revision 2.1,

14 Typical characteristics C 85 C V out [V] Figure 36 BCR 42U: Output Current versus V out I out = f(v out ), V EN = 4 V, R ext = open, T A = Parameter C 85 C V out [V] Figure 37 BCR 42U: Output Current versus V out I out = f(v out ), V EN = 4 V, R ext = 2 Ω, T A = Parameter Datasheet 14 Revision 2.1,

15 Typical characteristics C 85 C V out [V] Figure 38 BCR 42U: Output Current versus V out I out = f(v out ), V EN = 4 V, R ext = 6 Ω, T A = Parameter C 85 C V EN [V] Figure 39 BCR 42U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = open, T A = Parameter Datasheet 15 Revision 2.1,

16 Typical characteristics C 85 C V EN [V] Figure 31 BCR 42U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = 2 Ω, T A = Parameter C 85 C V EN [V] Figure 311 BCR 42U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = 6 Ω, T A = Parameter Datasheet 16 Revision 2.1,

17 Typical characteristics.15.1 R ext = open R ext = 6 Ω R ext = 3 Ω R ext = 1 Ω R ext = 8 Ω R ext = 6 Ω V EN [V] Figure 312 BCR 42U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = Parameter I EN [ma] C 8 C V EN [V] Figure 313 BCR 42U: Enable Current versus V EN I EN = f(v EN ), R ext = open, I out = A, T A = Parameter Datasheet 17 Revision 2.1,

18 Typical characteristics.2.15 R ext = 6 Ω.1.5 R ext = 8 Ω R ext = 1 Ω R ext = 15 Ω R ext = 3 Ω R ext = open V out [V] Figure 314 BCR 421U: Output Current versus V out I out = f(v out ), V EN = 3.3 V, R ext = Parameter V out = 1.4 V V out = 5.4 V R ext [Ω] Figure 315 BCR 421U: Output Current versus R ext I out = f(r ext ), V EN = 3.3 V, V out = Parameter Datasheet 18 Revision 2.1,

19 Typical characteristics C 85 C V out [V] Figure 316 BCR 421U: Output Current versus V out I out = f(v out ), V EN = 3.3 V, R ext = open, T A = Parameter C 85 C V out [V] Figure 317 BCR 421U: Output Current versus V out I out = f(v out ), V EN = 3.3 V, R ext = 2 Ω, T A = Parameter Datasheet 19 Revision 2.1,

20 Typical characteristics C 85 C V out [V] Figure 318 BCR 421U: Output Current versus V out I out = f(v out ), V EN = 3.3 V, R ext = 6 Ω, T A = Parameter C 85 C V EN [V] Figure 319 BCR 421U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = open, T A = Parameter Datasheet 2 Revision 2.1,

21 Typical characteristics C 85 C V EN [V] Figure 32 BCR 421U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = 2 Ω, T A = Parameter C 85 C V EN [V] Figure 321 BCR 421U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = 6 Ω, T A = Parameter Datasheet 21 Revision 2.1,

22 Typical characteristics.15.1 R ext = open R ext = 6 Ω R ext = 3 Ω R ext = 1 Ω R ext = 8 Ω R ext = 6 Ω V EN [V] Figure 322 BCR 421U: Output Current versus V EN I out = f(v EN ), V out = 2 V, R ext = Parameter I EN [ma] C 8 C V EN [V] Figure 323 BCR 421U: Enable Current versus V EN I EN = f(v EN ), R ext = open, I out = A, T A = Parameter Datasheet 22 Revision 2.1,

23 Application hints 4 Application hints +V S µc EN I EN 1 OUT I out 2,3,5 6 R ext 4 BCR 421U E6327 R ext (optional ) GND V drop Figure 41 Application Circuit: Enabling / PWM by Micro Controller +V S EN I EN 1 OUT I out 2,3,5 6 R ext 4 BCR 42U E6327 R ext (optional ) GND V drop Figure 42 Application Circuit: Enabling by Connecting to V S Application hints BCR 42U E6327 / BCR 421U E6327 serve as an easy to use constant current sources for LEDs. In stand alone application an external resistor can be connected to adjust the current from 1 ma to 25 ma. R ext can be determined by using Figure 35 or Figure 315. Connecting a low tolerance resistor R ext will improve the overall accuracy of the current sense resistance formed by the parallel connection of R int and R ext leading to an improved current accuracy. Please take into account that the resulting output currents will be slightly lower due to the self heating of the component and the negative thermal coefficient. Please visit our web site for application notes and for uptodate application information. Datasheet 23 Revision 2.1,

24 Package 5 Package 2.9 ±.2 (2.25) B (.35) MAX ±.1 ±.1 ±.1 Pin 1 marking M B 6x M.1 MAX. A 1.6 A SC74PO V4 Figure 51 Package Outline for SC74 (dimensions in mm) SC74FPR V4 Figure 52 Package Footprint for SC74 (dimensions in mm) Pin 1 marking SC74TP Figure 53 Tape and Reel Information for SC74 (dimensions in mm) Datasheet 24 Revision 2.1,

25 Terminology Terminology I out /I out h FE I EN I out I R LED PCB P tot PWM R B R ext R int RoHs R thjs T A T J T S T stg V BR(CEO) V BR V drop V EN V out V R V S V Smin Output current change DC current gain Enable current Output current Reverse current Light Emitting Diode Printed Circuit Board Total power dissipation Pulse Width Modulation Bias resistor External resistor Internal resistor Restriction of Hazardous Substance directive Thermal resistance junction to soldering point Ambient temperature Junction temperature Soldering point temperature Storage temperature Collectoremitter breakdown voltage Breakdown voltage Voltage drop Enable voltage Output voltage Reverse voltage Supply voltage Lowest sufficient supply voltage overhead Datasheet 25 Revision 2.1,

26 Published by Infineon Technologies AG

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