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07/08/2017 V1.01 Features: > Super high brightness surface mount LED automotive exterior applications. > 120° viewing angle. > Compact package outline (LxW) of 2.5 x 2.0mm. > Ultra low height profile - 0.7mm. > Low thermal resistance. > Superior corrosion robustness. > Compatible to IR reflow soldering. > Compliance to automotive standard; AEC-Q101. > Environmental friendly; RoHS compliance. SpicePlus Like spice, its diminutive size is a stark contrast to its standout performance in terms of brightness, durability and reliability. Despite being the smallest in size yet the SpicePlus packs a powerful performance and is a highly reliable design device. DATA SHEET: SpicePlus2520 InGaN Yellow : SPZY-VZHG © 2005 SpiceLED is a trademark of DOMINANT Opto Technologies. All rights reserved. Product specifications are subject to change without notice. Applications: > Automotive: Exterior application: eg: Turn Signal, Turn Indicator. DOMINANT Opto Technologies Innovating Illumination TM ALHD ALHD

07/08/2017 V1.02 SPZY-VZHG-PQ3-1 InGaN Yellow 120 Part Ordering Number Color Viewing Angle˚ Luminous Flux @ 150mA (lm) Appx. 1.2 Unit Absolute Maximum Ratings Maximum Value DC forward current Peak pulse current; (tp ≤ 10µs, Duty cycle = 0.1) Reverse voltage; Ir max = 10µA ESD threshold (HBM) LED junction temperature Operating temperature Storage temperature Thermal resistance - Real Thermal Resistance Junction / solder point, R th JS real (typ = 18) - Electrical Thermal Resistance Junction / solder point, R th JS el (typ = 14) (Mounting on DOMINANT standard PCB) 250 600 Not designed for reverse bias 150 -40 … +125 -40 … +125 mA mA V KV K/W K/W Typ. (V) Vf @ If = 150mA Appx. 3.1 Electrical Characteristics at Tj=25˚C Max. (V)Part Number SPZY-VZHG 3.0 3.2 Min. (V) 2.7 Electrical Characteristics at Tj=25˚C 23.5 Min. Typ. Max. 30.6 39.8 SPZY-VZHG DOMINANT Opto Technologies Innovating Illumination TM

Electrical Characteristics at Tj=25˚C 07/08/2017 V1.03 Color Grouping Appx. 2.1 Color Bin Structure Bin 0.5606 0.4250 Cx Cy 0.5705 0.4289 0.5883 0.4111 0.5780 0.4080 1 2 3 4 InGaN wavelength is very sensitive to drive current. Operating at lower current is not recommended and may yield unpredictable performance current pulsing should be used for dimming purposed. B i n 12341 0.450 0 410 0.420 0.430 0.440 0.380 0.390 0.400 0.410 0.380 SPZY-VZHG DOMINANT Opto Technologies Innovating Illumination TM

Forward Voltage (V) Appx. 4.1 Vf Bining (Optional) Vf Bin @ 150 mA VH7 VH8 VH9 07/08/2017 V1.04 Brightness Group Luminous Flux Appx. 1.2 (lm) Luminous Intensity Group at Tj=25˚C SPZY-VZHG DOMINANT Opto Technologies Innovating Illumination TM Please consult sales and marketing for special part number to incorporate Vf bining.

07/08/2017 V1.05 Forward Current IF (mA) Forward Current I F (mA) Relative Luminous Flux Ф rel Forward Current I F (mA) Forward Current IF (mA) Relative Spectral Emission Фrel = f(λ); Tj = 25°C; IF = 150mA Relative Luminous Flux Ф rel Wavelength λ (nm) Allowable Forward Current I F( mA ) Duty Ratio, % ∆Cx, ∆Cy Forward Current Vs Forward Voltage IF = f(VF); Tj = 25°C Forward Voltage VF (V) Temperature T(°C) Maximum Current Vs Temperature IF=f(T) SPZY-VZHG DOMINANT Opto Technologies Innovating Illumination TM 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 0 25 50 75 100 125 150 175 200 225 250 100 125 150 175 200 225 250 Forward Current IF Forward Current IF (mA) Forward Current Vs Forward Voltage IF = f(VF); Tj = 25°C Forward Voltage VF (V) 0.0 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 1.0 350 400 450 500 550 600 650 700 750 800 850 Wavelength λ (nm) Forward Current IF (mA) Maximum Current Vs Temperature IF = f (T) Temperature T(°C) 100 125 150 175 200 225 250 275 300 0 15 30 45 60 75 90 105 120 135 150 Ts Ts = Solder Point Temperature -0.5 -0.4 -0.3 -0.2 -0.1 0.0 0.1 0.2 0.3 0.4 0.5 -50 -30 -10 10 30 50 70 90 110 130 150 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 2.0 -50 -30 -10 10 30 50 70 90 110 130 150 Relative Forward Voltage ∆VF (V) Relative Forward Voltage Vs Junction Temperature ∆VF = VF -V F(25°C) = f(Tj); IF = 150mA Junction Temperature Tj(°C) Junction Temperature Tj(°C) Relative Lumionous Flux Vs Forward Current ФV/ФV(150mA) = f(IF); Tj = 25°C Relative Luminous Flux Фrel Relative Luminous Intensity Irel Relative Spectral Emission Irel = f(λ); Tj = 25°C; IF = 150mA Relative Luminious Flux Vs Junction Temperature ФV/ФV(25°C) = f(Tj); IF =150mA Relative Luminous Flux Фrel Relative Luminous Flux Vs Forward Current ФV/ФV(150mA) = f(IF); Tj = 25°C 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 0 25 50 75 100 125 150 175 200 225 250 100 125 150 175 200 225 250 Forward Current IF Forward Current IF (mA) Forward Current Vs Forward Voltage IF = f(VF); Tj = 25°C Forward Voltage VF (V) 0.0 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 1.0 350 400 450 500 550 600 650 700 750 800 850 Wavelength λ (nm) Forward Current IF (mA) Maximum Current Vs Temperature IF = f (T) Temperature T(°C) 100 125 150 175 200 225 250 275 300 0 15 30 45 60 75 90 105 120 135 150 Ts Ts = Solder Point Temperature -0.5 -0.4 -0.3 -0.2 -0.1 0.0 0.1 0.2 0.3 0.4 0.5 -50 -30 -10 10 30 50 70 90 110 130 150 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 2.0 -50 -30 -10 10 30 50 70 90 110 130 150 Relative Forward Voltage ∆VF (V) Relative Forward Voltage Vs Junction Temperature ∆VF = VF -V F(25°C) = f(Tj); IF = 150mA Junction Temperature Tj(°C) Junction Temperature Tj(°C) Relative Lumionous Flux Vs Forward Current ФV/ФV(150mA) = f(IF); Tj = 25°C Relative Luminous Flux Фrel Relative Luminous Intensity Irel Relative Spectral Emission Irel = f(λ); Tj = 25°C; IF = 150mA Relative Luminious Flux Vs Junction Temperature ФV/ФV(25°C) = f(Tj); IF =150mA Relative Luminous Flux Фrel 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 0 25 50 75 100 125 150 175 200 225 250 100 125 150 175 200 225 250 Forward Current IF Forward Current IF (mA) Forward Current Vs Forward Voltage IF = f(VF); Tj = 25°C Forward Voltage VF (V) 0.0 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 1.0 350 400 450 500 550 600 650 700 750 800 850 Wavelength λ (nm) Forward Current IF (mA) Maximum Current Vs Temperature IF = f (T) Temperature T(°C) 100 125 150 175 200 225 250 275 300 0 15 30 45 60 75 90 105 120 135 150 Ts Ts = Solder Point Temperature -0.5 -0.4 -0.3 -0.2 -0.1 0.0 0.1 0.2 0.3 0.4 0.5 -50 -30 -10 10 30 50 70 90 110 130 150 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 2.0 -50 -30 -10 10 30 50 70 90 110 130 150 Relative Forward Voltage ∆VF (V) Relative Forward Voltage Vs Junction Temperature ∆VF = VF -V F(25°C) = f(Tj); IF = 150mA Junction Temperature Tj(°C) Junction Temperature Tj(°C) Relative Lumionous Flux Vs Forward Current ФV/ФV(150mA) = f(IF); Tj = 25°C Relative Luminous Flux Фrel Relative Luminous Intensity Irel Relative Spectral Emission Irel = f(λ); Tj = 25°C; IF = 150mA Relative Luminious Flux Vs Junction Temperature ФV/ФV(25°C) = f(Tj); IF =150mA Relative Luminous Flux Фrel 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 0 25 50 75 100 125 150 175 200 225 250 100 125 150 175 200 225 250 Forward Current IF Forward Current IF (mA) Forward Current Vs Forward Voltage IF = f(VF); Tj = 25°C Forward Voltage VF (V) 0.0 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 1.0 350 400 450 500 550 600 650 700 750 800 850 Wavelength λ (nm) Forward Current IF (mA) Maximum Current Vs Temperature IF = f (T) Temperature T(°C) 100 125 150 175 200 225 250 275 300 0 15 30 45 60 75 90 105 120 135 150 Ts Ts = Solder Point Temperature -0.5 -0.4 -0.3 -0.2 -0.1 0.0 0.1 0.2 0.3 0.4 0.5 -50 -30 -10 10 30 50 70 90 110 130 150 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 2.0 -50 -30 -10 10 30 50 70 90 110 130 150 Relative Forward Voltage ∆VF (V) Relative Forward Voltage Vs Junction Temperature ∆VF = VF -V F(25°C) = f(Tj); IF = 150mA Junction Temperature Tj(°C) Junction Temperature Tj(°C) Relative Lumionous Flux Vs Forward Current ФV/ФV(150mA) = f(IF); Tj = 25°C Relative Luminous Flux Фrel Relative Luminous Intensity Irel Relative Spectral Emission Irel = f(λ); Tj = 25°C; IF = 150mA Relative Luminious Flux Vs Junction Temperature ФV/ФV(25°C) = f(Tj); IF =150mA Relative Luminous Flux Фrel -0.005 -0.004 -0.003 -0.002 -0.001 0.000 0.001 0.002 0.003 0.004 0.005 0 30 60 90 120 150 180 210 240 270 300 -5.00 -4.00 -3.00 -2.00 -1.00 0.00 1.00 2.00 3.00 4.00 5.00 0 10 20 30 40 50 60 70 Relative Wavelength λrel Relative Wavelength Shift Vs Forward Current Forward Current IF (mA) ∆Cx, ∆Cy Chromaticity Coordinate Shift Vs Forward Current ∆Cx, ∆Cy = f(IF);Tj = 25°C Forward Current IF (mA) Allowable Forward Current IF( mA ) Allowable Forward Current Vs Duty Ratio ( Tj = 25°C; tp ≤ 10μs ) Duty Ratio, % 100 1000 0.1 1 10 100 -12.0 -10.0 -8.0 -6.0 -4.0 -2.0 0.0 2.0 4.0 6.0 8.0 10.0 12.0 -50 -30 -10 10 30 50 70 90 110 130 -0.025 -0.020 -0.015 -0.010 -0.005 0.000 0.005 0.010 0.015 0.020 0.025 -50 -30 -10 10 30 50 70 90 110 130 150 Relative Wavelength ∆λdom(nm) Relative Wavelength Vs Junction Temperature ∆λdom = λdom - λdom (25°C) = f(Tj); IF = 50mA ∆Cx, ∆Cy Chromaticity Coordinate Shift Vs Junction Temperature ∆Cx, ∆Cy = f(Tj); IF = 150mA Junction Temperature Tj(°C) Junction Temperature Tj(°C) ∆Cx ∆Cy ∆Cx ∆Cy Chromaticity Coordinate Shift Vs Forward Current ∆Cx, ∆Cy = f(IF);Tj = 25°C -0.005 -0.004 -0.003 -0.002 -0.001 0.000 0.001 0.002 0.003 0.004 0.005 0 30 60 90 120 150 180 210 240 270 300 -5.00 -4.00 -3.00 -2.00 -1.00 0.00 1.00 2.00 3.00 4.00 5.00 0 10 20 30 40 50 60 70 Relative Wavelength λrel Relative Wavelength Shift Vs Forward Current Forward Current IF (mA) ∆Cx, ∆Cy Chromaticity Coordinate Shift Vs Forward Current ∆Cx, ∆Cy = f(IF);Tj = 25°C Forward Current IF (mA) Allowable Forward Current IF( mA ) Allowable Forward Current Vs Duty Ratio ( Tj = 25°C; tp ≤ 10μs ) Duty Ratio, % 100 1000 0.1 1 10 100 -12.0 -10.0 -8.0 -6.0 -4.0 -2.0 0.0 2.0 4.0 6.0 8.0 10.0 12.0 -50 -30 -10 10 30 50 70 90 110 130 -0.025 -0.020 -0.015 -0.010 -0.005 0.000 0.005 0.010 0.015 0.020 0.025 -50 -30 -10 10 30 50 70 90 110 130 150 Relative Wavelength ∆λdom(nm) Relative Wavelength Vs Junction Temperature ∆λdom = λdom - λdom (25°C) = f(Tj); IF = 50mA ∆Cx, ∆Cy Chromaticity Coordinate Shift Vs Junction Temperature ∆Cx, ∆Cy = f(Tj); IF = 150mA Junction Temperature Tj(°C) Junction Temperature Tj(°C) ∆Cx ∆Cy ∆Cx ∆Cy Allowable Forward Current Vs Duty Ratio ( Tj = 25°C; tp ≤ 10μs )

07/08/2017 V1.06 Radiation Pattern Relative Forward Voltage ∆V F (V) Junction Temperature Tj(°C) Relative Luminious Flux Ф rel Relative Luminious Flux Vs Junction Temperature ФV/ФV(25°C) = f(Tj); IF = 150mA Junction Temperature Tj(°C) ∆Cx , ∆Cy 08/12/2016 V7.09 InGaN Warm White: DDF-LJG DOMINANT Opto Technologies Innovating Illumination TM Radiation Pattern Junction Temperature Tj(°C) Relative Forward Voltage ∆V F (V) Junction Temperature Tj(°C) Relative Luminous Intensity I rel Relative Luminous Intensity Vs Junction Temperature IV/IV(25°C) = f(Tj); IF = 20mA Junction Temperature Tj(°C) ∆Cx , ∆Cy Chromaticity Coordinate Shift Vs Junction Temperature ∆Cx, ∆Cy = f(Tj); IF = 20mA 0.270° 90° 80° 60° 50° 40° 30° 20° 0.6 0.4 1.0 0.8 10° 0° -0.5 -0.4 -0.3 -0.2 -0.1 0.0 0.1 0.2 0.3 0.4 0.5 -50 -30 -10 10 30 50 70 90 110 130 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 2.0 -50 -30 -10 10 30 50 70 90 110 130 Relative Forward Voltage ∆VF (V) Relative Forward Voltage Vs Junction Temperature ∆VF = VF -V F(25°C) = f(Tj); IF = 20mA Junction Temperature Tj(°C) Junction Temperature Tj(°C) Relative Luminous Intensity Vs Junction Temperature IV /IV (25°C) = f(Tj); IV = 20mA Relative Luminous Intensity Irel -0.5 -0.4 -0.3 -0.2 -0.1 0.0 0.1 0.2 0.3 0.4 0.5 -50 -30 -10 10 30 50 70 90 110 130 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 2.0 -50 -30 -10 10 30 50 70 90 110 130 Relative Forward Voltage ∆VF (V) Relative Forward Voltage Vs Junction Temperature ∆VF = VF -V F(25°C) = f(Tj); IF = 20mA Junction Temperature Tj(°C) Junction Temperature Tj(°C) Relative Luminous Intensity Vs Junction Temperature IV /IV (25°C) = f(Tj); IV = 20mA Relative Luminous Intensity Irel Relative Forward Voltage Vs Junction Temperature ∆VF = VF - VF(25°C) = f(Tj); IF =20mA -10.0 -8.0 -6.0 -4.0 -2.0 0.0 2.0 4.0 6.0 8.0 10.0 -50 -30 -10 10 30 50 70 90 110 130 ∆Cx ∆Cy -0.030 -0.025 -0.020 -0.015 -0.010 -0.005 0.000 0.005 0.010 0.015 0.020 0.025 0.030 -50 -30 -10 10 30 50 70 90 110 130 Relative Wavelength ∆λdom(nm) Relative Wavelength Vs Junction Temperature ∆λdom = λdom - λdom (25°C) = f(Tj); IF = 20mA ∆Cx, ∆Cy Chromaticity Coordinate Shift Vs Junction Temperature ∆Cx, ∆Cy = f(Tj); IF = 20mA Junction Temperature Tj(°C) Junction Temperature Tj(°C) Junction Temperature Tj(°C) SPZY-VZHG DOMINANT Opto Technologies Innovating Illumination TM Chromaticity Coordinate Shift Vs Junction Temperature ∆Cx, ∆Cy = f(Tj); IF = 150mA 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 0 25 50 75 100 125 150 175 200 225 250 100 125 150 175 200 225 250 Forward Current IF Forward Current IF (mA) Forward Current Vs Forward Voltage IF = f(VF); Tj = 25°C Forward Voltage VF (V) 0.0 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 1.0 350 400 450 500 550 600 650 700 750 800 850 Wavelength λ (nm) Forward Current IF (mA) Maximum Current Vs Temperature IF = f (T) Temperature T(°C) 100 125 150 175 200 225 250 275 300 0 15 30 45 60 75 90 105 120 135 150 Ts Ts = Solder Point Temperature -0.5 -0.4 -0.3 -0.2 -0.1 0.0 0.1 0.2 0.3 0.4 0.5 -50 -30 -10 10 30 50 70 90 110 130 150 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 2.0 -50 -30 -10 10 30 50 70 90 110 130 150 Relative Forward Voltage ∆VF (V) Relative Forward Voltage Vs Junction Temperature ∆VF = VF -V F(25°C) = f(Tj); IF = 150mA Junction Temperature Tj(°C) Junction Temperature Tj(°C) Relative Lumionous Flux Vs Forward Current ФV/ФV(150mA) = f(IF); Tj = 25°C Relative Luminous Flux Фrel Relative Luminous Intensity Irel Relative Spectral Emission Irel = f(λ); Tj = 25°C; IF = 150mA Relative Luminious Flux Vs Junction Temperature ФV/ФV(25°C) = f(Tj); IF =150mA Relative Luminous Flux Фrel 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 0 25 50 75 100 125 150 175 200 225 250 100 125 150 175 200 225 250 Forward Current IF Forward Current IF (mA) Forward Current Vs Forward Voltage IF = f(VF); Tj = 25°C Forward Voltage VF (V) 0.0 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 1.0 350 400 450 500 550 600 650 700 750 800 850 Wavelength λ (nm) Forward Current IF (mA) Maximum Current Vs Temperature IF = f (T) Temperature T(°C) 100 125 150 175 200 225 250 275 300 0 15 30 45 60 75 90 105 120 135 150 Ts Ts = Solder Point Temperature -0.5 -0.4 -0.3 -0.2 -0.1 0.0 0.1 0.2 0.3 0.4 0.5 -50 -30 -10 10 30 50 70 90 110 130 150 0.0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8 2.0 -50 -30 -10 10 30 50 70 90 110 130 150 Relative Forward Voltage ∆VF (V) Relative Forward Voltage Vs Junction Temperature ∆VF = VF -V F(25°C) = f(Tj); IF = 150mA Junction Temperature Tj(°C) Junction Temperature Tj(°C) Relative Lumionous Flux Vs Forward Current ФV/ФV(150mA) = f(IF); Tj = 25°C Relative Luminous Flux Фrel Relative Luminous Intensity Irel Relative Spectral Emission Irel = f(λ); Tj = 25°C; IF = 150mA Relative Luminious Flux Vs Junction Temperature ФV/ФV(25°C) = f(Tj); IF =150mA Relative Luminous Flux Фrel Relative Forward Voltage Vs Junction Temperature ∆VF = VF - VF(25°C) = f(Tj); IF = 150mA -0.005 -0.004 -0.003 -0.002 -0.001 0.000 0.001 0.002 0.003 0.004 0.005 0 30 60 90 120 150 180 210 240 270 300 -5.00 -4.00 -3.00 -2.00 -1.00 0.00 1.00 2.00 3.00 4.00 5.00 0 10 20 30 40 50 60 70 Relative Wavelength λrel Relative Wavelength Shift Vs Forward Current Forward Current IF (mA) ∆Cx, ∆Cy Chromaticity Coordinate Shift Vs Forward Current ∆Cx, ∆Cy = f(IF);Tj = 25°C Forward Current IF (mA) Allowable Forward Current IF( mA ) Allowable Forward Current Vs Duty Ratio ( Tj = 25°C; tp ≤ 10μs ) Duty Ratio, % 100 1000 0.1 1 10 100 -12.0 -10.0 -8.0 -6.0 -4.0 -2.0 0.0 2.0 4.0 6.0 8.0 10.0 12.0 -50 -30 -10 10 30 50 70 90 110 130 -0.025 -0.020 -0.015 -0.010 -0.005 0.000 0.005 0.010 0.015 0.020 0.025 -50 -30 -10 10 30 50 70 90 110 130 150 Relative Wavelength ∆λdom(nm) Relative Wavelength Vs Junction Temperature ∆λdom = λdom - λdom (25°C) = f(Tj); IF = 50mA ∆Cx, ∆Cy Chromaticity Coordinate Shift Vs Junction Temperature ∆Cx, ∆Cy = f(Tj); IF = 150mA Junction Temperature Tj(°C) Junction Temperature Tj(°C) ∆Cx ∆Cy ∆Cx ∆Cy

07/08/2017 V1.07 SpicePlus 2520 InGaN Yellow : SPZY-VZHG Package Outlines Material Material Lead-frame Package Encapsulant Soldering Leads Cu Alloy With Au Plating Heat Resistant Polymer Silicone Resin Au Plating Note: product is Pb free Note : Primary thermal path is through Cathode lead of LED package General Tolerances ± 0.10 SPZY-VZHG DOMINANT Opto Technologies Innovating Illumination TM ABCD

07/08/2017 V1.08 Recommended Solder Pad Recommended Solder Stencil Design SPZY-VZHG DOMINANT Opto Technologies Innovating Illumination TM

07/08/2017 V1.09 Taping and orientation

  • Reels come in quantity of 2000 units.
  • Reel diameter is 180 mm. SPZY-VZHG DOMINANT Opto Technologies Innovating Illumination TM

07/08/2017 V1.010 Packaging Specification SPZY-VZHG DOMINANT Opto Technologies Innovating Illumination TM 08/12/2016 V7.013 Packaging Specification InGaN Warm White: DDF-LJGDOMINANT Opto Technologies Innovating Illumination TM

07/08/2017 V1.011 Packaging Specification Average 1pc SpicePlus 2520 1 completed bag (2000pcs) 0.034 190 ± 10Weight (gram) Cardboard Box Dimensions (mm) Empty Box Weight (kg) Super Small Small Medium Large For SpicePlus 2520 Reel / BoxCardboard Box Size Weight (gram) 0.011 200 ± 10 DOMINANT TM Moisture sensitivity level Moisture absorbent material + Moisture indicator The reel, moisture absorbent material and moisture indicator are sealed inside the moisture proof foil bag Reel Barcode label Label (L) Lot No : lotno (P) Part No : partno (C) Cust No : partno (G) Grouping : group (Q) Quantity : quantity (D) D/C : date code (S) S/N : serial no DOMINANT Opto Technologies ML TEMP 2 260˚C RoHS Compliant Made in Malaysia 325 x 225 x 190 325 x 225 x 280 570 x 440 x 230 570 x 440 x 460 0.38 0.54 1.46 1.92 9 reels MAX 15 reels MAX 60 reels MAX 120 reels MAX SPZY-VZHG DOMINANT Opto Technologies Innovating Illumination TM

07/08/2017 V1.012 Time (sec) 0 50 100 150 200 300 250 225 200 175 150 125 100 275Temperature (˚C) Classification Reflow Profile (JEDEC J-STD-020C) Ramp-up 3˚C/sec max. 255-260˚C 10-30s 60-150s Ramp- down 6˚C/sec max. Preheat 60-180s 480s max 217˚C Recommended Pb-free Soldering Profile SPZY-VZHG DOMINANT Opto Technologies Innovating Illumination TM

07/08/2017 V1.013 Appendix 1) Brightness: 1.1 Luminous intensity is measured with an internal reproducibility of ± 8 % and an expanded uncertainty of ± 11 % (according to GUM with a coverage factor of k=3). 1.2 Luminous flux is measured with an internal reproducibility of ± 8 % and an expanded uncertainty of ± 11 % (according to GUM with a coverage factor of k=3). 2) Color: 2.1 Chromaticity coordinate groups are measured with an internal reproducibility of ± 0.005 and an expanded uncertainty of ± 0.01 (accordingly to GUM with a coverage factor of k=3). 2.2 DOMINANT wavelength is measured with an internal reproducibility of ± 0.5nm and an expanded uncertainty of ± 1nm (accordingly to GUM with a coverage factor of k=3). 3) Voltage: 3.1 Forward Voltage, Vf is measured with an internal reproducibility of ± 0.05V and an expanded uncertainty of ± 0.1V (accordingly to GUM with a coverage factor of k=3). SPZY-VZHG DOMINANT Opto Technologies Innovating Illumination TM

Revision History

All the information contained in this document is considered to be reliable at the time of publishing. However, DOMINANT Opto Technologiess does not assume any liability arising out of the application or use of any product described herein. DOMINANT Opto Technologies reserves the right to make changes to any products in order to improve reliability, function or design. DOMINANT Opto Technologies products are not authorized for use as critical components in life support devices or systems without the express written approval from the Managing Director of DOMINANT Opto Technologies . Subjects Initial Release Date of Modification

07 Aug 2017

07/08/2017 V1.014 Page SPZY-VZHG DOMINANT Opto Technologies Innovating Illumination TM

DOMINANT Opto Technologies is a dynamic company that is amongst the world’s leading automotive LED manu- facturers. With an extensive industry experience and relentless pursuit of innovation, DOMINANT’s state-of-art manufacturing and development capabilities have become a trusted and reliable brand across the globe. More in- formation about DOMINANT Opto Technologies, a ISO/TS 16949 and ISO 14001 certified company, can be found under http://www.dominant-semi.com. Please contact us for more information: DOMINANT Opto Technologies Sdn. Bhd. Lot 6, Batu Berendam, FTZ Phase III, 75350 Melaka, Malaysia Tel: (606) 283 3566 Fax: (606) 283 0566 E-mail: sales@dominant-semi.com SPZY-VZHG DOMINANT Opto Technologies Innovating Illumination TM