Features. Typical Applications G9 Candle Light. ProLight PTA2-3LxE-N3Lxx 3W AC LED Technical Datasheet Version: DS-0384

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ProLight PTA2-3LxE-N3Lxx 3W AC LED Technical Datasheet Version: 1.1 Features High Color rendering index High flux per LED Good color uniformity Industry best moisture sensitivity level - JEDEC Level 1 RoHS compliant More energy efficient than incandescent and most halogen lamps Instant light (less than 100ns) No UV Typical Applications G9 Candle Light 2016/10 1 DS-0384

Emitter Mechanical Dimensions Top View Side View Notes: 1. Electrical insulation between the case and the board is required. Do not electrically connect either the AC1 or AC2 to the slug. 2. Drawing not to scale. 3. All dimensions are in millimeters. 4. Unless otherwise indicated, tolerances are ± 0.10mm. 5. Please do not bend the leads of the LED, otherwise it will damage the LED. 6. Please do not use a force of over 3kgf impact or pressure on the LED, otherwise it will cause a catastrophic failure. *The appearance and specifications of the product may be modified for improvement without notice. 2

Flux Characteristics at 10mA-rms, T J = 25 C Radiation Part Number Luminous Flux Φ V (lm) CRI Color Pattern Emitter Minimum Typical Minimum Lambertian White PTA2-3LWE-N3L50 140 170 80 Neutral White PTA2-3LNE-N3L40 140 170 80 Warm White PTA2-3LVE-N3L27 130 150 80 ProLight maintains a tolerance of ± 7% on flux and power measurements. ProLight maintains a tolerance of ± 2 on CRI measurements. Please do not drive at rated current more than 1 second without proper heat sink. Optical Characteristics at 10mA-rms, T J = 95 C Total included Viewing Thermal Angle Angle Resistance Color Temperature CCT (degrees) (degrees) Junction to Color Min. Typ. Max. θ 0.90V 2 θ 1/2 Slug ( C/ W) White 4730 K 5000 K 5330 K 160 140 8 Neutral White 3780 K 4000 K 4150 K 160 140 8 Warm White 2650 K 2700 K 2800 K 160 140 8 ProLight maintains a tolerance of ± 5% for CCT measurements. Electrical Characteristics at 10mA-rms, T J = 25 C Forward Voltage V F (V) Color Min. Typ. Max. White 190 205 220 Neutral White 190 205 220 Warm White 190 205 220 ProLight maintains a tolerance of ± 2V for Voltage measurements. 3

Absolute Maximum Ratings Parameter DC Forward Current (ma-rms) Peak Pulsed Forward Current (ma-rms) ESD Sensitivity (HBM per MIL-STD-883E Method 3015.7) LED Junction Temperature Operating Board Temperature at Maximum DC Forward Current Storage Temperature Soldering Temperature Allowable Reflow Cycles White/Neutral White/Warm White 13.2 26.4 (less than 1/10 duty cycle@1khz) > ±1000V <115 C 85 C -40 C - 85 C JEDEC 020c 260 C 1 4

Photometric Luminous Flux Bin Structure Color White Neutral White Warm White Bin Code 4 5 6 7 8 9 4 5 6 7 8 9 3 4 5 6 7 8 Minimum Maximum Available Photometric Flux (lm) Photometric Flux (lm) Color Bins 140.0 151.2 162.0 172.8 151.2 All 162.0 172.8 183.6 183.6 200.0 200.0 216.0 140.0 151.2 All 151.2 162.0 162.0 172.8 172.8 183.6 183.6 200.0 200.0 216.0 130.0 140.0 All 140.0 151.2 151.2 162.0 162.0 172.8 172.8 183.6 183.6 200.0 ProLight maintains a tolerance of ± 7% on flux and power measurements. The flux bin of the product may be modified for improvement without notice. The rest of color bins are not 100% ready for order currently. Please ask for quote and order possibility. Voltage Bin Structure Color Bin Code Minimum Voltage Maximum Voltage White Neutral White Warm White 0 1 2 0 1 2 0 1 2 190.0 198.9 198.9 206.7 206.7 220.0 190.0 198.9 198.9 206.7 206.7 220.0 190.0 198.9 198.9 206.7 206.7 220.0 ProLight maintains a tolerance of ± 2V for Voltage measurements. 5

y Color Bins White Binning Structure Graphical Representation at 10mA-rms, T J = 95 C 0.40 0.38 0.36 5330 K 5000 K V0 4730 K Planckian (BBL) 0.34 0.32 White 0.30 0.28 0.28 0.30 0.32 0.34 0.36 0.38 0.40 x White Bin Structure Bin Code x y 0.352 0.364 0.349 0.366 0.339 0.358 0.338 0.347 0.340 0.344 0.352 0.352 Typ. CCT (K) V0 5000 Color range stay within MacAdam 4-step ellipse from the chromaticity center. Tolerance on each color bin (x, y) is ± 0.005 6

y Color Bins Neutral White Binning Structure Graphical Representation at 10mA-rms, T J = 95 C 0.42 0.40 0.38 4150 K 4000 K S0 3780 K Planckian (BBL) 0.36 0.34 Neutral White 0.32 0.32 0.34 0.36 0.38 0.40 0.42 0.44 x Neutral White Bin Structure Bin Code x y 0.3924 0.3888 0.3890 0.3922 0.3773 0.3851 0.3739 0.3723 0.3771 0.3690 0.3883 0.3756 Typ. CCT (K) S0 4000 Color range stay within MacAdam 4-step ellipse from the chromaticity center. Tolerance on each color bin (x, y) is ± 0.005 7

y Color Bins Warm White Binning Structure Graphical Representation at 10mA-rms, T J = 95 C 0.46 0.44 0.42 2800 K 2700 K 2650 K M3 M2 M1 M4 Planckian (BBL) 0.40 Warm White 0.38 0.42 0.44 0.46 0.48 0.50 x Warm White Bin Structure Bin Code x y Typ. CCT Typ. CCT Bin Code x y (K) (K) 0.4678 0.4159 0.4585 0.4104 M1 0.4632 0.4176 2650 M3 0.4541 0.4120 0.4585 0.4104 0.4496 0.4049 2650 0.4629 0.4088 0.4538 0.4033 0.4632 0.4176 0.4629 0.4088 0.4609 0.4184 0.4585 0.4104 M2 0.4564 0.4156 2750 M4 0.4538 0.4033 2750 0.4541 0.4120 0.4559 0.4024 0.4585 0.4104 0.4605 0.4052 Color range stay within MacAdam 4-step ellipse from the chromaticity center. Tolerance on each color bin (x, y) is ± 0.005 8

Relative Spectral Power Distribution Relative Spectral Power Distribution Relative Spectral Power Distribution Color Spectrum, T J = 25 C 1. White 1.0 0.8 0.6 White Standard Eye Response Curve 0.4 0.2 0.0 350 400 450 500 550 600 650 700 750 800 850 Wavelength (nm) 2. Netural White 1.0 0.8 0.6 0.4 0.2 Standard Eye Response Curve Neutral White 0.0 350 400 450 500 550 600 650 700 750 800 850 900 Wavelength (nm) 3. Warm White 1.0 Standard Eye Response Curve 0.8 0.6 0.4 Warm White 0.2 0.0 350 400 450 500 550 600 650 700 750 800 850 Wavelength(nm) 9

Relative Vf Relative Luminous Flux Color Spectrum, T J = 25 C T J VS Relative Luminous Flux 1.2 1.0 0.8 0.6 0.4 0.2 0.0 0 20 40 60 80 100 120 T J T J VS Relative Vf 1.2 1.0 0.8 0.6 0.4 0.2 0.0 0 20 40 60 80 100 T J 10

Forward Current (ma) Relative Luminous Flux Forward Current VS Relative Luminous Flux 2.0 1.8 1.6 1.4 1.2 1.0 0.8 0.6 0.4 0.2 0.0 0 5 10 15 20 25 Forward Current (ma) Forward Current VS Forward Voltage 18 16 14 12 10 8 6 4 2 0 190 200 210 220 230 240 Forward Voltage (V) 11

Moisture Sensitivity Level - JEDEC Level 1 Soak Requirements Level Floor Life Standard Accelerated Environment Time Conditions Time (hours) Conditions Time (hours) Conditions 1 Unlimited 30 C / 85 C / 168 +5/-0 85% RH 85% RH NA NA The standard soak time includes a default value of 24 hours for semiconductor manufature's exposure time (MET) between bake and bag and includes the maximum time allowed out of the bag at the distributor's facility. Table below presents the moisture sensitivity level definitions per IPC/JEDEC's J-STD-020C. Soak Requirements Level Floor Life Standard Accelerated Environment Time Conditions Time (hours) Conditions Time (hours) Conditions 1 Unlimited 30 C / 85 C / 168 +5/-0 85% RH 85% RH NA NA 2 1 year 30 C / 85 C / 168 +5/-0 60% RH 60% RH NA NA 2a 4 weeks 30 C / 30 C / 60 C / 696 +5/-0 120 +1/-0 60% RH 60% RH 60% RH 3 168 hours 30 C / 30 C / 60 C / 192 +5/-0 40 +1/-0 60% RH 60% RH 60% RH 4 5 5a 72 hours 48 hours 24 hours 30 C / 30 C / 60 C / 96 +2/-0 20 +0.5/-0 60% RH 60% RH 60% RH 30 C / 30 C / 60 C / 72 +2/-0 15 +0.5/-0 60% RH 60% RH 60% RH 30 C / 30 C / 60 C / 48 +2/-0 10 +0.5/-0 60% RH 60% RH 60% RH 6 Time on Label 30 C / Time on Label 30 C / (TOL) 60% RH (TOL) 60% RH NA NA 12

Reflow Soldering Condition Profile Feature Sn-Pb Eutectic Assembly Pb-Free Assembly Average Ramp-Up Rate (T Smax to T P ) 3 C / second max. 3 C / second max. Preheat Temperature Min (T Smin ) 100 C 150 C Temperature Max (T Smax ) 150 C 200 C Time (t Smin to t Smax ) 60-120 seconds 60-180 seconds Time maintained above: Temperature (T L ) 183 C 217 C Time (t L ) 60-150 seconds 60-150 seconds Peak/Classification Temperature (T P ) 240 C 260 C Time Within 5 C of Actual Peak Temperature (t P ) 10-30 seconds 20-40 seconds Ramp-Down Rate 6 C/second max. 6 C/second max. Time 25 C to Peak Temperature 6 minutes max. 8 minutes max. We recommend using the M705-S101-S4 solder paste from SMIC (Senju Metal Industry Co., Ltd.) for lead-free soldering. Do not use solder pastes with post reflow flux residue>47%. (58Bi-42Sn eutectic alloy, etc) This kind of solder pastes may cause a reliability problem to LED. All temperatures refer to topside of the package, measured on the package body surface. Repairing should not be done after the LEDs have been soldered. When repairing is unavoidable, a double-head soldering iron should be used. It should be confirmed beforehand whether the characteristics of the LEDs will or will not be damaged by repairing. Reflow soldering should not be done more than one times. When soldering, do not put stress on the LEDs during heating. After soldering, do not warp the circuit board. 13

Emitter Reel Packaging Notes: 1. Drawing not to scale. 2. All dimensions are in millimeters. 3. Unless otherwise indicated, tolerances are ± 0.10mm. 14

Emitter Reel Packaging Notes: 1. Empty component pockets sealed with top cover tape. 2. 250, 500 and 1000 pieces per reel. 3. Drawing not to scale. 4. All dimensions are in millimeters. 15

Precaution for Use Storage Please do not open the moisture barrier bag (MBB) more than one week. This may cause the leads of LED discoloration. We recommend storing ProLight s LEDs in a dry box after opening the MBB. The recommended storage conditions are temperature 5 to 30 C and humidity less than 40% RH. It is also recommended to return the LEDs to the MBB and to reseal the MBB. The slug is is not electrically neutral. Therefore, we recommend to isolate the heat sink. We recommend using the M705-S101-S4 solder paste from SMIC (Senju Metal Industry Co., Ltd.) for lead-free soldering. Do not use solder pastes with post reflow flux residue>47%. (58Bi-42Sn eutectic alloy, etc) This kind of solder pastes may cause a reliability problem to LED. Any mechanical force or any excess vibration shall not be accepted to apply during cooling process to normal temperature after soldering. Please avoid rapid cooling after soldering. Components should not be mounted on warped direction of PCB. Repairing should not be done after the LEDs have been soldered. This device should not be used in any type of fluid such as water, oil, organic solvent and etc. When cleaning is required, isopropyl alcohol should be used. When the LEDs are illuminating, operating current should be decide after considering the package maximum temperature. The appearance, specifications and flux bin of the product may be modified for improvement without notice. Please refer to the below website for the latest datasheets. http://www.prolightopto.com/ Handling of Silicone Lens LEDs Notes for handling of silicone lens LEDs Please do not use a force of over 3kgf impact or pressure on the LED, otherwise it will cause a catastrophic failure. The LEDs should only be picked up by making contact with the sides of the LED body. Avoid touching the silicone especially by sharp tools such as Tweezers. Avoid leaving fingerprints on the silicone. Please store the LEDs away from dusty areas or seal the product against dust. When populating boards in SMT production, there are basically no restrictions regarding the form of the pick and place nozzle, except that mechanical pressure on the silicone must be prevented. Please do not mold over the silicone with another resin. (epoxy, urethane, etc) 16