EdiPower II Series. Features LED light engine High power operation Instant on Long lifetime. Copyright 2010 Edison Opto. All rights reserved.

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EdiPower II Series EdiPower II series can provide different operating powers and different colors. They serve as optical engine and can be utilized in general lighting and special lighting applications, such as MR16 and projectors. Furthermore, the high CRI options allow the customers to optimize the effect in various fields such as interior architecture. Features LED light engine High power operation Instant on Long lifetime Copyright 2010 Edison Opto. All rights reserved.

Table of Contents Product Nomenclature...2 Environmental Compliance...3 Package Dimensions...4 Absolute Maximum Ratings...8 Operating Current and Luminous Flux Characteristics...9 The following table describes thermal resistance of EdiPower II series..11 Reliability Items and Failure Measures... 11 Color Spectrum and Radiation Pattern...13 Optical & Electric Curves.15 Packaging Information.. 17 EDISON OPTO CORPORATION 1 Version:1.0

Product Nomenclature The following table describes the available color, power, and lens type. For more information on luminous flux and forward voltage, please refer to the Multi-chip Bin Group document. < Table 1 EdiPower II series Nomenclature > EP S x - V F 2 3 X1 X2 X3 X4 X5 X6 X7 X1 X2 X3 LED Item Emitter Color Emitter Color Code Type Code Type Code Type EP EdiPower S Square W Cool White H Neutral White X Warm White X4 Serial NO.1 X5 Serial NO.2 X6 X7 Circuit Series Circuit Parallel Code Type Code Type 1~9 1~9 Series 1~9 1~9 Parallel EDISON OPTO CORPORATION 2 Version:1.0

Environmental Compliance EdiPower II series are compliant to the Restriction of Hazardous Substances Directive or RoHS. The restricted materials including lead, mercury cadmium hexavalent chromium, polybrominated biphenyls (PBB) and polybrominated diphenyl ether (PBDE) are not used in EdiPower II to provide an environmentally friendly product to the customers. EDISON OPTO CORPORATION 3 Version:1.0

Package Dimensions 4-6W Emitter Dimensions < Figure 1 4-6W EdiPower Series Dimensions > Notes: 1. Unit : mm 2. Tolerance : 0.2 mm 3. Drawings are not to scale 8~24W Emitter Dimensions < Figure 2 8~15W/16~24W EdiPower II Series Dimensions > Notes: 1. Unit : mm 2. Tolerance : 0.2 mm 3. Drawings are not to scale EDISON OPTO CORPORATION 4 Version:1.0

30~50W Emitter Dimensions < Figure 3 30~50W EdiPower II Series Dimensions > Notes: 1. Unit : mm 2. Tolerance : 0.2 mm 3. Drawings are not to scale EDISON OPTO CORPORATION 5 Version:1.0

4-6W Emitter Circuit Layout < Figure 4 4-6W EdiPower II Circuit Layout> 8~15W Emitter Circuit Layout 16~24W Emitter Circuit Layout < Figure 5 8~24W EdiPower II series Circuit Layout > EDISON OPTO CORPORATION 6 Version:1.0

30~50W Emitter Circuit Layout < Figure 6 30~50W EdiPower II series Circuit Layout > EDISON OPTO CORPORATION 7 Version:1.0

Absolute Maximum Ratings The following table describes absolute maximum ratings of EdiPower II series. < Table 2 Absolute maximum ratings for EdiPower II series > Test Parameter Unit Symbol Reverse Voltage 2 Note 2 V V R LED junction Temperature 3 125 T J Operating Temperature -40 ~ +110 Storage Temperature -40 ~ +120 LED Substrate Temperature <80 T s ESD Sensitivity 2,000 V V B Isolation Voltage 1,000 V Notes: 1. DC forward current should not exceed LED s operating current; the current tolerance should be kept within a range of 5%. 2. LEDs are not designed to be driven in reverse bias. 3. Proper current derating must be observed to maintain junction temperature below the maximum at all time. EDISON OPTO CORPORATION 8 Version:1.0

Operating Current and Luminous Flux Characteristics The following tables describe luminous flux of EdiPower II series under various current. < Table 3 Luminous flux characteristics at T J=25 for EdiPower II series> Color Part Number Typical Luminous Flux(lm) T case=60 Typical Luminous Flux(lm) T J=25 Typical Forward Voltage V F (V) Forward Current (ma) EPSW-VF23 370 410 6.4 700 490 540 6.7 1000 765 850 12.0 700 EPSW-VF44 1080 1200 12.5 1000 1260 1400 12.8 1200 Cool White 1300 1450 15.5 1000 EPSW-VF55 1500 1670 16.0 1200 1845 2050 16.5 1500 2500 2760 21.2 1500 EPSW-VF77 3330 3700 22.0 2000 3680 4100 22.6 2200 Color Part Number Typical Luminous Flux(lm) T case=60 Typical Luminous Flux(lm) T J=25 Typical Forward Voltage V F (V) Forward Current (ma) EPSH-VF23 315 350 6.4 700 410 460 6.7 1000 675 750 12.0 700 EPSH-VF44 900 1000 12.5 1000 1050 1190 12.8 1200 Natural White 1050 1200 15.5 1000 EPSH-VF55 1280 1420 16.0 1200 1575 1750 16.5 1500 2100 2340 21.2 1500 EPSH-VF77 2820 3140 22.0 2000 3130 3480 22.6 2200 EDISON OPTO CORPORATION 9 Version:1.0

Color Part Number Typical Luminous Flux(lm) T case=60 Typical Luminous Flux(lm) T J=25 Typical Forward Voltage V F (V) Forward Current (ma) EPSX-VE23 270 300 6.4 700 380 420 6.7 1000 540 600 12.0 700 EPSX-VE44 765 850 12.5 1000 880 980 12.8 1200 Warm White 900 1000 15.5 1000 EPSX-VE55 1050 1165 16.0 1200 1300 1450 16.5 1500 1730 1930 21.2 1500 EPSX-VE77 2330 2590 22.0 2000 2580 2870 22.6 2200 EDISON OPTO CORPORATION 10 Version:1.0

The following table describes thermal resistance of EdiPower II series. < Table 4 Temperature Coefficient of Forward Voltage & Thermal Resistance Junction to Case Characteristics at T J =25 for EdiPower II series > Part Name EPSx-Vx23 EPSx-Vx44 EPSx-Vx55 EPSx-Vx77 Test Current V F/ T Rθ J-B (ma) Typ. Unit Typ. Unit 1000-2 to -8 mv/ 1.4 /W 1200-5 to -10 mv/ 0.7 /W 1500-5 to -12 mv/ 0.5 /W 2200-8 to -16 mv/ 0.2 /W Reliability Items and Failure Measures Reliability test The following table describes operating life, mechanical, and environmental tests performed on EdiPower II series package. < Table 5 Operating life, mechanical, and environmental characteristics and T J =25 for EdiPower II series> Stress Test Stress Conditions Stress Duration Failure Criteria Room Temperature Operating Life 25, I F = I Fmax (Note 1) 1,000 hours Note 2 Temperature Cycle -40 /100,30 min dwell <5min transfer 100 cycles Note 2 High Temperature Storage Life 85 1,000 hours Note 2 Low Temperature Storage Life -40 1,000 hours Note 2 Thermal Shock -40 / 125, 15 min dwell /<10 sec transfer 100 cycles No catastrophics Natural Drop On concrete from 1.2 m, 3X No catastrophics Variable Vibration Frequency 10-2,000-10 Hz, log or linear sweep rate, 20 G about 1 min, 1.5 mm, 3X/axis No catastrophics Solder Heat Resistance (SHR) 260 ± 5 10 secs No catastrophics Notes: 1. Depending on the maximum derating curve. 2. Failure Criteria: Electrical failures V F shift >=10% Light Output Degradation % Iv shift >= 30% @1,000hrs or 500 cycle Visual failures Broken or damaged package Solderability < 95% wetting Dimension out of tolerance EDISON OPTO CORPORATION 11 Version:1.0

Failure Types Catastrophic failures are failures that result in the LED emitting no light or very little light at normal current levels (e.g. 700 ma). Catastrophic failures are not expected for EdiPower II emitters that are handled and operated within the limits specified in EdiPower II documentation. Please refer to Absolute Maximum Ratings for more information on design limits. Parametric failures are failures that cause key characteristics to shift outside of acceptable bounds. The most common parametric failure, for a high-power LED, is permanent light output degradation over operating life. Most other light sources experience catastrophic failure at the end of their useful life, providing a clear indication that the light source must be replaced. For instance, the filament of an incandescent light bulb breaks and the bulb ceases to create light. In contrast, high-power LEDs generally do not experience catastrophic failure but simply become too dim to be useful in the intended application. Further discussion of this matter can be found in the Long-Term Lumen Maintenance Testing section of this document. Another parametric failure common to white LEDs is a large and permanent shift in the exact color of white light output, called the white point or color point. A shift in white point may not be detectable in one LED by itself, but would be obvious in a side-by-side comparison of multiple LEDs. Since each lighting installation commonly uses many high-power LEDs, white point stability is a point of concern for lighting designers. Typically, white high-power LEDs, created by combining blue LEDs with yellow (and sometimes red) phosphor, will shift towards blue over operational life. This shift can be accelerated by high temperatures and high drive currents. For example, a cool white (e.g., 6500K CCT) LED with a white point failure will typically appear light blue instead of white. In some high-power LEDs, this failure mode can occur after just 1,000 hours of operational life. EDISON OPTO CORPORATION 12 Version:1.0

Color Spectrum and Radiation Pattern 100 80 60 Irel(%). 40 20 0 400 425 450 475 500 525 550 575 600 625 650 675 700 725 Wavelength(nm) <Figure 7 Color spectrum for EdiPower II cool white> 100 80 Irel(%) 60 40 20 0 400 425 450 475 500 525 550 575 600 625 650 675 700 725 750 775 Wavelength(nm) < Figure 8 Color spectrum for EdiPower II warm white and neutral white > EDISON OPTO CORPORATION 13 Version:1.0

100 90 80 Relative Intensity(%) 70 60 50 40 30 20 10 0-100 -80-60 -40-20 0 20 40 60 80 100 Angular Displacement(Degree) < Figure 9 Lambertain at T J =25 for EdiPower II series > Color Temperature or Dominant Wavelength Characteristics T J =25 < Table 6 Dominant Wavelength or Color Temperature Characteristics at T J =25 for EdiPower II series > Part Name Color Min. λd/cct Max. Unit EPSW-VFxx Cool White 5,000 10,000 K EPSH-VFxx Neutral White 3,800 5,000 K EPSX-VExx Warm White 2,670 3,800 K Notes: 1. CCT is measured with an accuracy of ± 200K. 2. Wavelength is measured with an accuracy of ± 0.5nm. EDISON OPTO CORPORATION 14 Version:1.0

Optical & Electric Curves Typical CCT shift Characteristic for Cool White T J =25 CCT (K) 6300 6250 6200 6150 6100 600 700 800 900 1000 1100 Forward Current (ma) CCT (K) 6180 6160 6140 6120 6100 6080 600 700 800 900 1000 1100 1200 1300 Forward Current (ma) < Figure 10 CCT shift for EPSW-VF23 > < Figure 11 CCT shift for EPSW-VF44 > C C T (K ) 6200 6180 6160 6140 6120 6100 6080 CCT (K) 6160 6150 6140 6130 6120 6110 6100 6090 900 1000 1100 1200 1300 1400 1500 1600 Forward Current (ma) 1400 1500 1600 1700 1800 1900 2000 2100 2200 2300 Forward Current (ma) < Figure 12 CCT shift for EPSW-VF55 > < Figure 13 CCT shift for EPSW-VF77 > EDISON OPTO CORPORATION 15 Version:1.0

Typical CCT Shift Characteristic for Cool White < Figure 14 Typical CCT vs. junction temperature for Cool White > Typical Light Output Characteristics over Thermal Pad Temperature for Cool White < Figure 15 Relative luminous flux vs. thermal pad temperature for Cool White > EDISON OPTO CORPORATION 16 Version:1.0

EdiPower II Packaging Information Tray Packing for 4-6W/8-24W Tray Packing for 30-50W < Figure 16 Tray package dimension > < Figure 17 Packaging steps > Notes: 1. All dimensions are in mm. 2. There are 4-6W 24pcs or 8-24W 30-50W 6pcs emitters in a full tray. 3. There are 5 trays in a bag. 4. There are 5 bags in an inner box. 5. There are 5 inner boxes in an outer box. 6. A bag contains one humidity indicator card and drying agent. EDISON OPTO CORPORATION 17 Version:1.0