Literature DB >> 33677966

Defects and Surface Electrical Property Transformation Induced by Elemental Interdiffusion at the p-n Heterojunction via High-Temperature Annealing.

Siyu Wang1, Zhan Shen1, Yali Sun1, Hui Li2, Kaizhi Zhang1, Li Wu3, Jianping Ao1, Yi Zhang1.   

Abstract

Heterojunction annealing is widely used to improve the efficiency of kesterite thin-film solar cells. However, the efficiency will decrease when the annealing temperature is high, and the reason why high-temperature postdeposition annealing results in the deterioration of device performance is not well-studied, which restricts the efficiency promotion of kesterite solar cells. This study investigates the effect of high-temperature postdeposition annealing on the p-n heterojunction and, thus, on the performance of the solar cell. The surface potential of the absorber layer inverts, the number of deep-level defects increases, and the CdS/CZTSe interface barrier height increases after high-temperature postdeposition annealing. A combination of different characterization methods reveals that excessive elemental diffusion at the p-n heterojunction during high-temperature postdeposition annealing is the key reason for deterioration of the performance of CZTSe devices. This study discloses the mechanism for the change in device properties with high-temperature postdeposition annealing and will also be helpful for understanding the mechanism of efficiency change as the solar cell keeps working.

Keywords:  electronic properties; elemental diffusion; heterojunction annealing; interface barrier; kesterite solar cells

Year:  2021        PMID: 33677966     DOI: 10.1021/acsami.1c00096

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  1 in total

Review 1.  Recovery Mechanisms in Aged Kesterite Solar Cells.

Authors:  Stephen Campbell; Martial Duchamp; Bethan Ford; Michael Jones; Linh Lan Nguyen; Matthew C Naylor; Xinya Xu; Pietro Maiello; Guillaume Zoppi; Vincent Barrioz; Neil S Beattie; Yongtao Qu
Journal:  ACS Appl Energy Mater       Date:  2022-03-08
  1 in total

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