高效GaSb基单结太阳能电池的仿真辅助设计

Fatima Zahra Kharchich, A. Khamlichi
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引用次数: 2

摘要

由于其提高的吸收系数、优异的抗辐射性和降低的有效电子质量,锑化镓(GaSb)半导体被证明适用于光伏系统应用。然而,他们被发现效率低下。这项工作致力于增强由AlGaAsSb材料制成的具有窗口和背面场的GaSb基单结太阳能电池的设计。其目的是通过将掺杂和层的厚度作为设计变量来最大化它们的电性能。提出了一种优化方法。它基于计算机辅助设计,通过在SILVACO-ATLAS软件下进行的模拟和为实现这种特定太阳能电池的优化设计而开发的数值程序。该方法包括方差分析和响应面模型的推导,以获得与效率相对应的目标函数的显式表达式。所获得的结果显示出的效率高于文献中建立的所有先前已知的值。
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Simulation aided design of a high efficient GaSb based single-junction solar cell
Owing to their elevated absorption coefficient, superior resistance to radiation and reduced effective electron mass, gallium antimonide (GaSb) semiconductors were documented to be suitable for photovoltaic systems applications. However, they were found to suffer from low efficiency. This work has been dedicated to enhance the design of GaSb based single-junction solar cells having window and back surface field made from AlGaAsSb material. The purpose is to maximize their electrical performance by considering doping and thickness of layers as design variables. A methodology of optimization was proposed. It is based on computer aided design through simulations performed under SILVACO-ATLAS software and a numerical procedure that was developed to achieve optimal design of this particular solar cell. The approach encompasses analysis of variance and derivation of response surface models to get explicit expression of the objective function corresponding to efficiency. The obtained results have shown an efficiency which is higher than all the previous known values established in literature.
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来源期刊
International Review of Applied Sciences and Engineering
International Review of Applied Sciences and Engineering Materials Science-Materials Science (miscellaneous)
CiteScore
2.30
自引率
0.00%
发文量
27
审稿时长
46 weeks
期刊介绍: International Review of Applied Sciences and Engineering is a peer reviewed journal. It offers a comprehensive range of articles on all aspects of engineering and applied sciences. It provides an international and interdisciplinary platform for the exchange of ideas between engineers, researchers and scholars within the academy and industry. It covers a wide range of application areas including architecture, building services and energetics, civil engineering, electrical engineering and mechatronics, environmental engineering, mechanical engineering, material sciences, applied informatics and management sciences. The aim of the Journal is to provide a location for reporting original research results having international focus with multidisciplinary content. The published papers provide solely new basic information for designers, scholars and developers working in the mentioned fields. The papers reflect the broad categories of interest in: optimisation, simulation, modelling, control techniques, monitoring, and development of new analysis methods, equipment and system conception.
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