Optimization of Cu(In, Ga)Se2 (CIGSe) thin film solar cells parameters through numerical simulation and experimental study

被引:10
|
作者
Valencia, D. [1 ]
Conde, J. [1 ,2 ]
Ashok, A. [3 ]
Meza-Avendano, C. A. [1 ]
Vilchis, H. [1 ]
Velumani, S. [3 ]
机构
[1] Univ Ciencias & Artes Chiapas, Inst Invest & Innovac Energias Renovables, Libramiento Norte 1150, Chiapas 29039, Mexico
[2] CONACYT Univ Ciencias & Artes Chiapas, Inst Invest & Innovac Energias Renovables, Libramiento Norte 1150, Chiapas 29039, Mexico
[3] Ctr Invest & Estudios Avanzados IPN, Dept Ingn Elect, Av IPN 2508, Mexico City 07300, DF, Mexico
关键词
Hybrid deposition method; CIGSe thin-film solar cell; J-V characteristics; Density of states; LAYERS THICKNESS; EFFICIENCY; DEPOSITION; SELENIZATION; PERFORMANCE; GROWTH; MODEL; TIME;
D O I
10.1016/j.solener.2021.05.075
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
This study utilized the 2-D Silvaco ATLAS simulator to design and optimize the CIGSe thin-film solar cell (TFSC), considering experimental results from the hybrid-deposited CIGSe thin-film layer. The enhanced hybrid fabrication technique promises to yield higher power conversion efficiencies (PCE) for CIGSe-based TFSC and attain the Shockley-Queisser limit for single-junction devices. Another consideration is material utilization to avoid wastages without compromising on efficiency. The novel hybrid technique incorporates vacuum and non-vacuum deposition methods to fabricate the high-efficiency CIGSe absorber material for solar cell applications. The experimental studies involved optimizing the deposition methods and characterizing the deposited thin films for morphological, structural, optical, and electrical properties. Employing simulations in a study allows optimizing parameters, especially defects that may not be observed simply by experiments. During simulations for the CIGSe TFSC structure materials, the defined tail defect parameters studied the performance's deep defects, optimizing parameters favorable in experimental conditions for the CdS/CIGSe heterojunction in the based solar cell structure. The optimized simulated study achieved a record 21.92% of conversion efficiency. The simulated results can pave the way to understanding some carrier and device mechanisms, aiding fabricating low-coat and high-efficient CIGSe TFSC. The substitution of some results with experimental data from the hybrid deposited CIGSe absorber layer and reported optimized experimental values yielded an efficiency of 15.01%.
引用
收藏
页码:298 / 308
页数:11
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