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Design of suppressing optical and recombination losses in ultrathin CuInGaSe2 solar cells by Voronoi nanocavity arrays
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Design of suppressing optical and recombination losses in ultrathin CuInGaSe2 solar cells by Voronoi nanocavity arrays

Yi-Chung Wang, Chia-Wei Chen, Teng-Yu Su, Tzu-Yi Yang, Wen-Wu Liu, Faliang Cheng, Zhiming M. WangYu-Lun Chueh
Nano Energy, 卷.78, 105225
12/2020

摘要

Al2O3 Cu(In Ga)Se2 solar cells Light-trapping Nanostructures Rear surface passivation Voronoi nanocavity arrays (VNCAs) Renewable Energy Sustainability and the Environment Materials Science (all) Electrical and Electronic Engineering
Cu(In, Ga)Se 2 (CIGS) solar cells have reached efficiencies over 23%. However, the scarcity of In and Se makes reducing the thickness of CIGS thin-film absorber desirable for mass production with low-cost and time-saving processes. Meanwhile, CIGS solar cells based on different architectures and strategies have drawn much attention for significant performance over conventional technologies, but rational design guidelines for optical and electrical performance optimization are yet to be completed. In this work, the reduced thickness of the CIGS thin film with the optical and electrical loss-passivated molybdenum Voronoi nanocavity arrays (VNCAs) electrodes were demonstrated. A structural-model under conformally coating criteria was investigated and optimized by a finite-difference time-domain method. The reduced parasitic absorption and rear surface recombination by Al 2 O 3 passivation layers on VNCAs substrates give rise to enhanced V OC and J SC up to 9.5 and 8.5%, respectively. These results confirm that the novel VNCAs electrodes can provide a cost-effective way for ultrathin CIGS solar cells with high efficiency.

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