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Nanoarray heterojunction and its efficient solar cells without negative impact of photogenerated electric field

Authors :
Xingyou Tian
Tao Chen
Chao Dong
Shangfeng Yang
Mingtai Wang
Junwei Chen
Xiaogang Yuan
Wenbo Cao
Bin Chen
Rong Liu
Wangwei Chen
Zhitao Shen
Liangxin Zhu
Chong Chen
Zhiyang Wan
Bojiang Ding
Source :
Communications Physics, Vol 4, Iss 1, Pp 1-12 (2021)
Publication Year :
2021
Publisher :
Springer Science and Business Media LLC, 2021.

Abstract

Efficient, stable and low-cost solar cells are being desired for the photovoltaic conversion of solar energy into electricity for sustainable energy production. Nanorod/nanowire arrays of narrow-bandgap semiconductors are the promising light-harvesters for photovoltaics because of their excellent optoelectrical properties. Here, the array of preferentially oriented antimony trisulfide (Sb2S3) single-crystalline nanorods is grown on polycrystalline titania (TiO2) film by a tiny-seed-assisted solution-processing strategy, offering an Sb2S3/TiO2 nanoarray heterojunction system on a large scale. It is demonstrated that the Sb2S3 nanorod growth follows a tiny-seed-governed orientation-competing-epitaxial nucleation/growth mechanism. Using a conjugated polymer hole transporting layer on the heterojunction, we achieve a power conversion efficiency of 5.70% in the stable hybrid solar cell with a preferred p-type/intrinsic/n-type architecture featuring effectively straightforward charge transport channels and no negative impact of photogenerated electric field on device performance. An architecture-dependent charge distribution model is proposed to understand the unique photovoltaic behavior. Photovoltaic devices require reliable and scalable growth methods to produce the constituent materials. Here, the authors report a tiny-seed-assisted solution processing strategy to grow Sb2S3/TiO2 nanoarray heterojunction of which the hybrid solar cell without negative impact of photogenerated electric field exhibits a power efficiency of 5.70%.

Details

ISSN :
23993650
Volume :
4
Database :
OpenAIRE
Journal :
Communications Physics
Accession number :
edsair.doi.dedup.....84c7de932e6482a566f095c44c325004
Full Text :
https://doi.org/10.1038/s42005-021-00678-1