4
EVA encapsulant +TAIC.pdf
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31
PV+Module+Encapsulant+Packaging+Materials.pdf
PV+Module+Encapsulant+Packaging+MaterialsPV+Module+Encapsulant+Packaging+MaterialsPV+Module+Encapsulant+Packaging+Materials
2
8882 High Gel Reenterable Encapsulant.pdf
8882 High Gel Reenterable Encapsulant
13
Development of test vehicles for evaluating plastic-encapsulant reliability and improving thermal conductivity of encapsulant materials.pdf
Development of test vehicles for evaluating plastic-encapsulant reliability and improving thermal conductivity of encapsulant materialsDevelopment of test vehicles for evaluating plastic-encapsulant reliability and improving thermal conductivity of encapsulant materialsDevelopment of test vehicles for evaluating plastic-encapsulant reliability and improving thermal conductivity of encapsulant materials
25
Testing Protocol for Module Encapsulant Creep:模块封装材料的蠕变试验协议.pdf
Testing Protocol for Module Encapsulant Creep:模块封装材料的蠕变试验协议
5
INCREASED INTERNAL QUANTUM EFFICIENCY OF ENCAPSULATED SOLAR CELLS BY USING TWO-COMPONENT SILICONE AS ENCAPSULANT MATERIAL.pdf
Two-component silicone encapsulation materials show a higher transmission in the short wavelengthregion compared to EVA (ethylene vinyl acetate) encapsulation material. This property leads to an enhanced blueresponse of the encapsulated solar cells and therefore an increase in Jsc (short circuit current density) is expected.Selective emitter and homogeneous emitter solar cells have been encapsulated with silicone materials as well as withEVA, and the IQE (internal quantum efficiency) of all cells before and after encapsulation was determined. Asignificant gain in IQE for wavelengths below 380 nm was observed for cells encapsulated with silicone compared tothose with EVA. We estimate that that the improved blue response of the cells encapsulated with silicone results in apossible gain in Jsc of up to 1.3 % for the selective emitter cells.

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