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Enhancing silicon solar cell efficiency with double layer antireflection coating
Author(s) -
Mohamed Medhat,
El-Sayed El-Zaiat,
S.S. Farag,
G. M. Youssef,
Reda ALKHADRY
Publication year - 2016
Publication title -
turkish journal of physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.169
H-Index - 26
eISSN - 1303-6122
pISSN - 1300-0101
DOI - 10.3906/fiz-1508-14
Subject(s) - materials science , solar cell , coating , refractive index , energy conversion efficiency , optoelectronics , silicon , layer (electronics) , optics , short circuit , substrate (aquarium) , current density , anti reflective coating , dispersion (optics) , open circuit voltage , solar cell efficiency , voltage , power density , power (physics) , composite material , electrical engineering , quantum mechanics , engineering , oceanography , geology , physics
Antireection coating on silicon, a high refractive index substrate, was theoretically investigated. The effects of antireection coating on electrical parameters such as the short circuit current, open circuit voltage, maximum current density, maximum voltage, maximum power, power density, and conversion efficiency of the solar cell were simulated. Various previous works in which solar cell efficiencies were investigated after applying double layer antireection coating (DLARC) were reviewed. Ti 2 O 3 and MgF 2 were then applied in a DLARC design, taking into consideration the refractive index dispersion of the two materials. The results were compared with other works in the solar spectral range (400{1200 nm). As a result of simulation, the reectance on the surface was reduced from 30.2% to 2.37%. Moreover, about 22% conversion efficiency and 38.6 mA/ cm 2 short circuit current density were achieved for a silicon cell with DLARC. These results were compared with the parameters of a cell without coating, one with single layer coating, and one with zero reectance on the front surface.

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