DocumentCode :
69683
Title :
Origin of Reduced Efficiency in Cu(In,Ga)Se _2 Solar Cells With High Ga Concentration: Alloy Solubility Versus Intrinsic Defects
Author :
Bing Huang ; Shiyou Chen ; Hui-Xiong Deng ; Lin-Wang Wang ; Contreras, M.A. ; Noufi, Rommel ; Su-Huai Wei
Author_Institution :
Nat. Renewable Energy Lab., Golden, CO, USA
Volume :
4
Issue :
1
fYear :
2014
fDate :
Jan. 2014
Firstpage :
477
Lastpage :
482
Abstract :
It is well known that adding Ga to CuInSe2 forming CuIn1-xGaxSe2 (CIGS) alloy can significantly improve the solar cell efficiency, but adding too much Ga will lead to a decline of the solar cell efficiency. The exact origin of this puzzling phenomenon is currently still under debate. It is especially unclear whether it is caused by either structural or electronic issues. In this paper, we conclude that the defect issue, especially antisite defects MCu (M = In, Ga), rather than the alloy solubility is the key problem for the reduced efficiency in CIGS. The deep levels that are induced by MCu defects can pin the open-circuit voltage (Voc) of CIGS. Self-compensation in CIGS, which forms 2VCu + M Cu defect complexes, is found to be beneficial to quenching the deep-trap levels induced by MCu in CIGS. Unfortunately, the density of isolated MCu is quite high and cannot be largely converted into 2VCu + MCu complexes under thermal equilibrium condition. Thus, nonequilibrium growth conditions or low growth temperature that can suppress the formation of the deep-trap centers MCu will be necessary to improve the efficiency of CIGS solar cells, especially with high Ga concentrations.
Keywords :
antisite defects; copper compounds; deep levels; gallium compounds; indium compounds; solar cells; solubility; ternary semiconductors; CuIn1-xGaxSe2; alloy solubility; antisite defects; deep-trap levels; high Ga concentration; intrinsic defects; low growth temperature; nonequilibrium growth conditions; open-circuit voltage; reduced efficiency origin; self-compensation; solar cell efficiency; thermal equilibrium condition; Chemicals; Gallium; Hafnium; Photonic band gap; Photovoltaic cells; CIGS; defects; first-principles calculations; photovoltaics;
fLanguage :
English
Journal_Title :
Photovoltaics, IEEE Journal of
Publisher :
ieee
ISSN :
2156-3381
Type :
jour
DOI :
10.1109/JPHOTOV.2013.2285617
Filename :
6648657
Link To Document :
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