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Abstract
Flexible solar cells are one of the most significant power sources for modern on-body electronics devices. Recently, fiber-type or fabric-type photovoltaic devices have attracted increasing attentions. Compared with conventional solar cell with planar structure, solar cells with fiber or fabric structure have shown remarkable flexibility and deformability for weaving into almost any shape and assembling with any portable electronic equipment as a sustainable power supply. This review comprehensively summarizes the recent progress of wearable fiber-type and fabric-type solar cells as well as its applications in hybrid energy textiles. For solar cells of dye-sensitized type, organic type and perovskite type, the discussion involves working mechanism, structural design, material selection, preparation technology and potential applications. In addition, challenges and technical difficulties that may hinder its large-scale commercial application are also summarized and discussed. It is hoped that, this review will be of help for future researches on textile-type energy devices, to finally make it an everyday lifestyle in a near future.
Keywords
Solar cells
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Fiber-type
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Fabric-type
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Hybrid energy textiles
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Chemical Sciences
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Physical Chemistry (incl. Structural)
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Engineering
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Materials Engineering
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Siwei Xiang, Nannan Zhang, Xing Fan.
From Fiber to Fabric: Progress Towards Photovoltaic Energy Textile.
Advanced Fiber Materials, 2021, 3(2): 76-106 DOI:10.1007/s42765-020-00062-8
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Funding
National Natural Science Foundation of China(21676033)
Fok Ying-Tong Education Foundation for Young Teachers in the Higher Education Institutions of China(161067)
Innovation Driven Development Project of Guangxi Province (CN)(AA19182015-1)
RIGHTS & PERMISSIONS
Donghua University, Shanghai, China