Flexible and stretchable inorganic solar cells: Progress, challenges, and opportunities

IF 3.3 Q3 ENERGY & FUELS MRS Energy & Sustainability Pub Date : 2020-07-01 DOI:10.1557/mre.2020.22
Nazek El‐atab, M. Hussain
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引用次数: 11

Abstract

This review focuses on state-of-the-art research and development in the areas of flexible and stretchable inorganic solar cells, explains the principles behind the main technologies, highlights their key applications, and discusses future challenges. Flexible and stretchable solar cells have gained a growing attention in the last decade due to their ever-expanding range of applications from foldable electronics and robotics to wearables, transportation, and buildings. In this review, we discuss the different absorber and substrate materials in addition to the techniques that have been developed to achieve conformal and elastic inorganic solar cells which show improved efficiencies and enhanced reliabilities compared with their organic counterparts. The reviewed absorber materials range from thin films, including a-Si, copper indium gallium selenide, cadmium telluride, SiGe/III–V, and inorganic perovskite to low-dimensional and bulk materials. The development techniques are generally based on either the transfer-printing of thin cells onto various flexible substrates (e.g., metal foils, polymers, and thin glass) with or without shape engineering, the direct deposition of thin films on flexible substrates, or the etch-based corrugation technique applied on originally rigid cells. The advantages and disadvantages of each of these approaches are analyzed in terms of achieved efficiency, thermal and mechanical reliability, flexibility/stretchability, and economical sustainability.
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柔性可拉伸无机太阳能电池:进展、挑战和机遇
本文重点介绍了柔性和可拉伸无机太阳能电池领域的最新研究和发展,解释了主要技术背后的原理,重点介绍了它们的关键应用,并讨论了未来的挑战。柔性和可拉伸的太阳能电池在过去十年中获得了越来越多的关注,因为它们的应用范围不断扩大,从可折叠电子产品和机器人到可穿戴设备、运输和建筑。在这篇综述中,我们讨论了不同的吸收剂和衬底材料,以及已经开发的技术,以实现保形和弹性无机太阳能电池,与有机太阳能电池相比,它们显示出更高的效率和更高的可靠性。所审查的吸收材料范围从薄膜,包括a-Si,硒化铜铟镓,碲化镉,SiGe/ III-V,无机钙钛矿到低维和块状材料。开发技术通常是基于将薄电池转移印刷到各种柔性基板(例如,金属箔,聚合物和薄玻璃)上,有或没有形状工程,在柔性基板上直接沉积薄膜,或应用于原始刚性电池的蚀刻波纹技术。从实现效率、热学和机械可靠性、灵活性/拉伸性和经济可持续性等方面分析了每种方法的优缺点。
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来源期刊
MRS Energy & Sustainability
MRS Energy & Sustainability ENERGY & FUELS-
CiteScore
6.40
自引率
2.30%
发文量
36
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