DocumentCode :
12876
Title :
Light Trapping Textures Designed by Electromagnetic Optimization for Subwavelength Thick Solar Cells
Author :
Ganapati, Vidya ; Miller, Owen D. ; Yablonovitch, Eli
Author_Institution :
Mater. Sci. Div., Univ. of California, Berkeley, Berkeley, CA, USA
Volume :
4
Issue :
1
fYear :
2014
fDate :
Jan. 2014
Firstpage :
175
Lastpage :
182
Abstract :
Light trapping in solar cells allows for increased current and voltage, as well as reduced materials cost. It is known that in geometrical optics, a maximum 4 n2 absorption enhancement factor can be achieved by randomly texturing the surface of the solar cell, where n is the material refractive index. This ray-optics absorption enhancement (AE) limit only holds when the thickness of the solar cell is much greater than the optical wavelength. In subwavelength thin films, the fundamental questions remain unanswered: 1) what is the subwavelength AE limit and 2) what surface texture realizes this optimal AE? We turn to computational electromagnetic optimization in order to design nanoscale textures for light trapping in subwavelength thin films. For high-index thin films, in the weakly absorbing limit, our optimized surface textures yield an angle- and frequency-averaged enhancement factor ~39. They perform roughly 30% better than randomly textured structures, but they fall short of the ray optics enhancement limit of 4 n2 ~ 50.
Keywords :
optimisation; ray tracing; refractive index; solar cells; surface texture; angle-averaged enhancement factor; computational electromagnetic optimization; frequency-averaged enhancement factor; geometrical optics; high-index thin films; light trapping textures; material refractive index; maximum absorption enhancement factor; nanoscale textures; optical wavelength; optimized surface textures; randomly textured structures; ray-optics absorption enhancement limit; solar cell surface; solar cell thickness; subwavelength thick solar cells; subwavelength thin films; weakly absorbing limit; Absorption; Charge carrier processes; Materials; Optical surface waves; Optimization; Photovoltaic cells; Surface texture; Light trapping; optimization; subwavelength;
fLanguage :
English
Journal_Title :
Photovoltaics, IEEE Journal of
Publisher :
ieee
ISSN :
2156-3381
Type :
jour
DOI :
10.1109/JPHOTOV.2013.2280340
Filename :
6601630
Link To Document :
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