ACULED VHL RBGW ACL01-MC-RBGW-Exx-C01-V-0000

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ACULED VHL RBGW ACL01-MC-RBGW-Exx-C01-V-0000 The new ACULED VHL (Very High Lumen) RBGW delivers excellent white and a wide color space tenability, improved luminous efficacy and excellent thermal management, all in a compact, easy-to-assemble package. Introduction The ACULED VHL (Very High Lumen) White Series is the newest addition to the growing ACULED family of standard and custom high-power LED solutions based on PerkinElmer Elcos superior Chip-on- Board (COB) technology. The new ACULED VHL White Series delivers superior brightness, luminous efficacy, and a step-change improvement in thermal management. It is based on the ACULED VHL board utilizing an Insulated Metal Core Substrate (IMS) made of copper and a highly sophisticated isolation material with low thermal resistance between the copper and the chip pads. The ACULED VHL White Series is available standard in different white color temperatures as well as multi-colored four-chip combinations including RGBW, RG White and 666R. Additional optics can be easily attached. Safe and reliable ESD protection is enabled using Zener diodes. The ACULED VHL as well as all members of the ACULED product family is fully RoHS-compliant. Features and Benefits Wide color space tunability High Color Rendering Index Based on multi Chip-on-Board (COB) technology 4 separate addressable chips Low thermal resistance (as low as 4.5 K/W) Best-in-class heat sinking Ultra-compact footprint Outstanding brightness and luminous efficacy Designed for high current applications Fully RoHS-compliant Applications Illumination Medical Lighting Aircraft Lighting Projection Signaling PerkinElmer s ACULED VHL is compact in size, easy to assemble and has a superior optical design. In addition, each chip has a separate anode and cathode enabling each chip to be driven individually, thus increasing flexibility in electrical layout. www.perkinelmer.com

Table of Contents Product Nomenclature 3 Average Lumen Maintenance Characteristics 3 Environmental Compliance 3 Ordering Information and Flux Characteristics 4 Table 1: Intensity Bin 4 Table 2: Chromaticity coordinates and Wavelength Bins 4 Optical and Electronic Characteristics 5 Maximum Ratings at 25 C 5 Tables of Characteristics 6 Mechanical and Electrical Specification 8 Reliability Information 9 Soldering 10 Hand Soldering 10 Cautions 10 Packaging 12 Optics 12 Heat Sink Recommendations 13 ACULED Designer Kit 13 ACULED DYO Flexibility to "Design-Your-Own" High Power LED 13 www.perkinelmer.com ACULED VHL 2

Product Nomenclature Average Lumen Maintenance Characteristics Typically, the lifetime for solid-state lighting devices, or LEDs, is derived from the percentage of initial light output that remains after a specific time period generally referred to as lumen maintenance. PerkinElmer projects that ACULED VHL white products will average 70% lumen maintenance after 30,000 hours of constant current operation with junction temperature maintained at or below 85 C. This performance is based on three criteria independent test data, PerkinElmer historical data from tests run on similar material systems, and internal ACULED reliability testing. To achieve this level of lumen maintenance, all design limits included in this datasheet must be adhered to carefully. Environmental Compliance PerkinElmer is proud of its commitment to providing the best in environmentally- friendly products to customers in the solid state lighting market. The ACULED VHL is no exception and complies with the European Union directives on the restriction of hazardous substances in electronic equipment as stated within the RoHS directive. The following restricted materials will not intentionally be added to the ACULED VHL lead, mercury, cadmium, hexavalent chromium, polybrominated biphenyls (PBB) or polybrominated diphenyl ethers (PBDE). www.perkinelmer.com ACULED VHL 3

Ordering Information and Flux Characteristics Board temperature T B =25 C Part-Number Description Type Color Luminous Flux Φ V [lm] I F=700 ma for rank R, I F = 350 ma for rank O Min. Typ. E001988 E001938 E002003 E001939 ACULED VHL RBG4 ACULED VHL RBG4 ACULED VHL RBG6 ACULED VHL RBG6 ACL01-MC-RBG4- E04-C01-L-O000 ACL01-MC-RBG4- E09-C01-L-R000 ACL01-MC-RBG6- E04-C01-L-O000 ACL01-MC-RBG6- E09-C01-L-R000 Red Blue Green White (4500K) Red Blue Green White (4500K) Red Blue Green White (6500K) Red Blue Green White (6500K) 27 Total 81 6 35 38 Total 161 50 16 80 58 Total 81 27 6 35 59 Total 161 50 16 80 90 Table 1: Intensity Bin Board temperature T B = 25 C; I F = 700 ma for rank S, I F = 350 ma for rank O Luminous Flux Φ V [lm] Rank Min. Max. O 81 128 R 161 256 Table 2: Chromaticity coordinates and Wavelength Bins Board temperature T B = 25 C; I F = 700 ma for rank S, I F = 350 ma for rank O White Correlated Color Temperature / Color Coordinates (tolerance quadrangle) 6500K 4500K x y x y 0,3205 0,3481 0,377 0,392 0,3028 0,3304 0,351 0,372 0,31 0,2958 0,351 0,335 0,324 0,315 0,374 0,352 Dominant Wavelength λ dom [nm] Rank Red Blue Green 0 620-630 455-465 515-530 Chromaticity coordinate group White According to ANSI_NEMA_ANSLG C78.377-2008 Measurement tolerance: ± 0,01 www.perkinelmer.com ACULED VHL 4

Optical and Electronic Characteristics c Board Temperature T B = 25 C Parameter Symbol Red Blue Green White Unit 4500K 6500K Luminous flux a @ 700 ma typ. Φ V 65 18 90 67 105 lm Luminous flux a @ 350 ma typ. Φ V 35 10 60 40 63 lm Luminous flux b @ 700 ma typ. Φ V 50 16 80 58 90 lm Luminous flux b @ 350 ma typ. Φ V 35 10 55 38 59 lm Chromaticity Coordinate x @ 700 ma typ. x 2 - - - 0.360 0.314 - Chromaticity Coordinate y @ 700 ma typ. y 2 0.349 0.328 - Correlated color temperature @ 700 ma typ. T CT - - 4500 6500 K Dominant wavelength @ 700 ma typ. T CT 621 460 523 - - nm Forward voltage per chip @ 350 ma typ. V F 2.1 3.3 3.6 3.3 V @ 700 ma 2.3 3.5 3.9 3.5 Optical efficacy a @ 350 ma typ. η opt 43 8.4 39 56 lm/w Optical efficacy b @ 350 ma typ. η opt 37 8.2 36 50 lm/w Temperature coefficient for λ dom 700 ma typ. TC (CCT) 0.04 0.05 0.01 - nm/k Temperature coefficient for V f per chip @ 700 ma typ. TC (Vf) - 2.5-3.7-2.9-3.7 mv/k Viewing angle at 50% typ. 2ψ 130 degree Radiating surface e typ. A rad 4.0 mm 2 Thermal resistance junction board typ. R th JB 5 K/W a Values for junction temperature T J = 25 C b Values for board temperature of T B = 25 C c For intensity rank R d operation at optimized intensity ratio red and green to white e 0.2 mm gap between chips not included Adequate heat sink is required. Derating must be observed to maintain junction temperature below maximum. Maximum Ratings at 25 C For Intensity Rank R Parameter Symbol Value Unit Operating temperature range T op -40 to 80 C Storage temperature T st -40 to 80 C Junction temperature T J 125 C Forward current per chip for Rank T I F 700 ma Surge current per chip I FM 1000 ma Forward voltage per chip @ 700 ma V F 4.0 (B, G, W) / 3.5 (R) V Reverse voltage per chip V R 5 V Reverse current (V R=5 V) I R 2 µa Power consumption @ 700 ma P tot 10.9 W ESD sensitivity 2 kv Soldering temperature Reflow (10 sec) Hand (3 sec.) T sold T sold 260 400 C For Intensity Rank O Parameter Symbol Value Unit Operating temperature range T op -40 to 80 C Storage temperature T st -40 to 80 C Junction temperature T J 125 C Forward current per chip for Rank T I F 350 ma Surge current per chip I FM 700 ma Forward voltage per chip @ 350 ma V F 4.0 (B, G, W) / 3.0 (R) V Reverse voltage per chip V R 5 V Reverse current (V R=5 V) I R 5 µa Power consumption @ 350 ma P tot 5.3 W ESD sensitivity 2 kv Soldering temperature Reflow (10 sec) Hand (3 sec.) T sold T sold 260 400 C www.perkinelmer.com ACULED VHL 5

Tables of Characteristics Typical Spectral Distribution (T B = 25 C) www.perkinelmer.com ACULED VHL 6

Board temperature T B = 25 C Forward current I F = 700 ma Forward Current* I F = f(v F) Maximum Forward Current / Chip* I F = f(t B) Luminous Flux* Φ V = f(i F) Relative Luminous Flux* = f(t B) Chromaticity Coordinates White* X = f(i F) / Y = f(i F) Relative Chromaticity Coordinates White* X = f(t B) / Y = f(t B) * typical values www.perkinelmer.com ACULED VHL 7

Mechanical and Electrical Specification Electrical Polarity Chip Pad C1 C2 C3 C4 Chip Color Red Blue Green White Package: Encapsulating Resin: Ring: Electrodes: IMS Silicone PPA based Au Plating www.perkinelmer.com ACULED VHL 8

Reliability Information PerkinElmer Reliability Test Program Test Item Content of Test Test Condition Remarks Measurement Ref. Standard Resistance to Soldering Heat (Reflow Soldering) Temperature Cycle Test, TCT Stability of the device for RoHS conform soldering conditions Stability of device under thermal stress, fast change of temperature T sold = 260 C for 10s (Pre treatment of the DUT: T sold=30 C, 60%, 24h) T A =-40 C to 120 C dwell time: 30 min cycles: 200, cycle time: 1h One soldering cycle. Non operation of DUT during test *) at 10% of nominal current *) Measurement of illuminance E v before and after test after 0, 100, 200 cycles JEDEC J-STD-020C, MSL level 6 IEC 60068-2-14 MIL-STD 883 MIL-STD 750 High Temperature Test, HTS Stability of device at long term storage at high temp. T A = 110 C test duration: 1000h at 10% of nominal current *) after 0, 1000h IEC 60068-2-2 MIL-STD 883 MIL-STD 750 Low Temperature Test, LTS Stability of device at long term storage at low temp. T A = -40 C test duration: 1000h at 10% of nominal current *) after 0, 1000h IEC 60068-2-1 MIL-STD 883 MIL-STD 750 Temperature Humidity Storage, THS Stability of device stored for a long term at high temperature and high humidity. T env = 85 C RH=85%, test duration: 1000h at 10% of nominal current *) after 0, 1000h IEC 60068-2-67 MIL-STD 202 Operation Life Test Stability of device operated under nominal conditions T A = 25 C, RH=30%, test duration: 500h at nominal current I fn *) after 0, 250 and 500h IEC 60068-1 MIL-STD 883 MIL-STD 750 Steady State Operating Life of High Humidity Heat Operation Life Test at High Temperature Vibration Test Stability of device under electrical and thermal stress and high humidity Stability of device at high junction temperature and operated at nominal current Stability of device under mechanical stress. Sinusoidal vibration T A = 60 C RH=90%, test duration: 1000h T A = 85 C test duration: 1000h f=100-2000hz acceleration: 200m/s² sweep: 4min 3 directions at nominal current I fn *) at nominal current I fn *) Number of cycles: 4, test duration: 48min after 0, 250, 500 and 1000h after 0, 250, 500 and 1000h before and after test. IEC 60068-2-78 IEC 60068-2-2 IEC 60068-2-6 MIL-STD-883E Electrostatic Discharge Stability of device under electrostatic stress Test Voltage=2kV (R=1,5kΩ, C=100pF) Positive and negative discharges: 3x with ESD-generator. Non-operation of DUT during test Measurement of illuminance before and after test. IEC 61000-4-2 MIL-STD-883E *) The test is done after the sample is cooled down to room temperature T sold=soldering temperature, T A=Ambient temperature, I fn=350ma, DUT = Device under Test. The tests are performed on top of PerkinElmer Elcos standard heat sink. www.perkinelmer.com ACULED VHL 9

Soldering Figure 1 Reflow Soldering Profile Figure 2 Recommended Solder Pad Geometry Hand Soldering - Pre-heat ACULED on a hot plate at 100 C. - Use 95 W soldering iron. - Apply soldering temperature of 400 C for max. three seconds. Cautions For eye safety aspects the standard CIE S009/E:2002 ("photobiological safety of lamps and lamp systems") has to be followed. The LEDs specified in this data sheet fall into the "low risk" group of the standard (relating to devices in the visible spectrum with an exposure time of 100 s). Under real circumstances (for exposure time, eye pupils, observation distance), it is assumed that no endangerment to the eye exists from these devices. As a matter of principle, however, it should be mentioned that intense light sources have a high secondary exposure potential due to their blinding effect. When viewing directly to the operated LEDs a temporary reduction in visual acuity and afterimages can occur, leading to irritation, annoyance, visual impairment, and even accidents, depending on the situation. www.perkinelmer.com ACULED VHL 10

Notes 1. PerkinElmer maintains a tolerance of ± 5% on flux and power measurements. 2. ACULED VHL products with even higher luminous flux and radiometric power levels will become available in the future. 3. Dominant wavelength is derived from the CIE 1931 chromaticity diagram and represents the perceived color. 4. PerkinElmer maintains a tolerance of ± 2 nm for dominant wavelength measurements. 5. PerkinElmer maintains a tolerance of ± 1 nm for peak wavelength measurements. 6. PerkinElmer maintains a tolerance of ± 2 K/W for thermal resistance measurements depending on chip properties. 7. Correlated color temperatures are derived from the CIE 1931 Chromaticity Diagram. CCT ± 5% Tester tolerance 8. All green, cyan, blue, and UV products are built with Indium Gallium Nitride (InGaN). 9. All red and yellow products are built with Aluminum Indium Gallium Phosphide (AlInGaP). 10. All infrared products are built with Aluminum Gallium Arsenide (AlGaAs). 11. Proper current derating must be observed to maintain junction temperature below the maximum. 13. LEDs are not designed to be driven in reverse bias. 14. Stresses in excess of the absolute maximum ratings can cause damage to the emitter. Maximum rating limits apply to each parameter in isolation, all parameters having values within the current derating curve. It should not be assumed that limiting values of more than one parameter can be applied to the product at the same time. Exposures to the absolute maximum ratings for extended periods can adversely affect device reliability. 15. Due to the special conditions of the manufacturing processes of LEDs, the typical data or calculated correlations of technical parameters can only reflect statistical figures. These do not necessarily correspond to the actual parameters of each single product, which could differ from the typical data and calculated correlations or the typical characteristic line. If requested, e.g. because of technical improvements, these typ. data will be changed without any further notice. 16. All drawings are not to scale. 17. All dimensions are specified in mm. 18. For general mounting instructions and thermal management requirements, please refer to our application notes accordingly. Please consult PerkinElmer or its distributors for more information. www.perkinelmer.com ACULED VHL 11

Packaging Optics Currently, the ACULED lens holder system offers two different collimating optics. With an opening angle of approximately 32, the ACULED LHS-AL25-L32 (E000525) provides a medium opening, whereas the LHS-AL25-L22 (E000524) has a tight collimating optic with an aperture angle of approximately 22. Due to their superior optical quality, both optics increase luminous intensity and, thereby, enable new application fields for the ACULED. Please contact us for further information or to receive the datasheet ACULED LHS-AL25. Figure 3 Opening Angle: Example RGB with Lens www.perkinelmer.com ACULED VHL 12

Heat Sink Recommendations The maximum junction temperature of the ACULED should not exceed 125 C. Therefore, an adequate heat sink is required for operating the LED with currents between 50 ma and 700 ma. Due to the ACULED s superior thermal management, heat dissipation is optimized when the LED is screwed down with thermal grease onto a planar substrate. ACULED Designer Kit PerkinElmer has designed a Designer Kit to run and test the ACULED in your application. It is easy to use and does not require specialized technical know-how. Please contact us to receive a product description and additional information on how to obtain the Designer Kit. ACULED DYO Flexibility to "Design-Your-Own" High Power LED In addition to the ACULED VHL, PerkinElmer's new line of standard monochromatic and multi-colored high powered LEDs, PerkinElmer is also debuting its exclusive new "Design- Your-Own" line, the ACULED DYO. The ACULED DYO gives customers the total flexibility to design their own four-chip LED configuration to suit their specific application. For more information on our new ACULED DYO line, please refer to the ACULED DYO Custom Design Guide. PerkinElmer Inc. 35 Congress Street Salem, MA 01970, USA Telephone: +1 978-745-3200 Toll free: (North America) +1 800-950-3441 Fax: +1 978-745-0894 Email: opto@perkinelmer.com www.perkinelmer.com PerkinElmer Inc. Wenzel-Jaksch-Str. 31 65199 Wiesbaden, Germany Telephone: (+49) 611-492-247 Fax: (+49) 611-492-170 Email: opto.europe@perkinelmer.com PerkinElmer Inc. 47 Ayer Rajah Crescent #06-12 Singapore 139947 Telephone: (+65) 6775-2022 Fax: (+65) 6775-1008 Email: opto.asia@perkinelmer.com For a complete listing of our global offices, visit www.optoelectronics.perkinelmer.com 2007-2009 PerkinElmer, Inc. All rights reserved. The PerkinElmer logo and design are registered trademarks of PerkinElmer, Inc. ACULED, VHL, and DYO are trademarks of PerkinElmer, Inc. or its subsidiaries, in the United States and other countries. All other trademarks not owned by PerkinElmer, Inc. or its subsidiaries that are depicted herein are the property of their respective owners. PerkinElmer reserves the right to change this document at any time without notice and disclaims liability for editorial, pictorial or typographical errors. 600277_03 DTS0609 www.perkinelmer.com ACULED VHL 13