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Flexible CuZnSnSe (CZTSe) solar cells hold great potential for low-cost green fabrication and portable applications, yet electrodeposited devices suffer from low efficiency (∼6% vs 12.84% for solution-processed ones), primarily due to defect-induced nonradiative recombination and carrier loss at back interfaces. Herein, a dual-functional GeSe-Se coselenization strategy is proposed to simultaneously achieve defect regulation and back-interface engineering. Ge substitution for Sn during selenization induces lattice contraction, effectively suppressing Sn-related deep defects and band-tail states while minimizing the secondary phase. Simultaneously, Ge diffuses into the MoSe interface layer to optimize the energy-level alignment and reduce nonradiative recombination. Consequently, the optimized flexible CZTSe solar cells achieve a record efficiency of 9.01%, the highest among electrodeposited flexible CZTSe devices. This study elucidates the synergistic role of Ge in simultaneously mitigating bulk defects and refining interfacial energetics, highlighting a remarkable achievement for electrodeposition-based flexible CZTSe solar cells.
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http://dx.doi.org/10.1021/acs.nanolett.5c02739 | DOI Listing |
Nano Lett
September 2025
Key Laboratory for Special Functional Materials of Ministry of Education, National and Local Joint Engineering Research Center for High-efficiency Display and Lighting Technology, School of Materials Science and Engineering, and Collaborative Innovation Center of Nano Functional Materials and Applic
Flexible CuZnSnSe (CZTSe) solar cells hold great potential for low-cost green fabrication and portable applications, yet electrodeposited devices suffer from low efficiency (∼6% vs 12.84% for solution-processed ones), primarily due to defect-induced nonradiative recombination and carrier loss at back interfaces. Herein, a dual-functional GeSe-Se coselenization strategy is proposed to simultaneously achieve defect regulation and back-interface engineering.
View Article and Find Full Text PDFACS Appl Mater Interfaces
July 2021
Key Laboratory for Special Functional Materials of Ministry of Education, Collaborative Innovation Center of Nano Functional Materials and Applications, Henan University, Kaifeng 475004, Henan, People's Republic of China.
Flexible CuZnSnSe (CZTSe) solar cells gradually attract much attention due to their low-cost, lightweight, and environmentally friendly features. However, the efficiency of flexible CZTSe solar cells obtained through the nonvacuum green electrodeposition process remains sluggish (3.82%), far away from that obtained from other methods (∼10% by magnetron sputtering).
View Article and Find Full Text PDFACS Omega
September 2020
Science and Technology on Combustion and Explosion Laboratory, Xi'an Modern Chemistry Research Institute, Xi'an 710065, P R China.
Composite counter electrodes have been shown to be a practical and effective strategy in dye-sensitized solar cell (DSSC) application. In this work, we designed and prepared a single-crystal CuZnSnSe (CZTSe) plate structure on flexible carbon fabric as a DSSC cathode, which combines the best of the two worlds, namely, the superior catalytic activity and hierarchical microstructure of kesterite CZTSe and the high conductivity and expanded framework of carbon fabric. The composite counter electrode presented a power conversion efficiency of 8.
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