Rapid Thermal Selenization Enhanced Efficiency in Sb2Se3 Thin Film Solar Cells with Superstrate Configuration

Al Amin, Kaiji Zhao, Kausar Khawaja, Yizhao Wang, Deepak V. Pillai, Yufeng Zheng, Lin Li, Xiaofeng Qian, Feng Yan

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

Antimony selenide (Sb2Se3) is a promising material for solar energy conversion due to its low toxicity, high stability, and excellent light absorption capabilities. However, Sb2Se3 films produced via physical vapor deposition often exhibit Se-deficient surfaces, which result in a high carrier recombination and poor device performance. The conventional selenization process was used to address selenium loss in Sb2Se3 solar cells with a substrate configuration. However, this traditional selenization method is not suitable for superstrated Sb2Se3 devices with the window layer buried underneath the Sb2Se3 light absorber layer, as it can lead to significant diffusion of the window layer material into Sb2Se3 and damage the device. In this work, we have demonstrated a rapid thermal selenization (RTS) technique that can effectively selenize the Sb2Se3 absorber layer while preventing the S diffusion from the buried CdS window layer into the Sb2Se3 absorber layer. The RTS technique significantly reduces carrier recombination loss and carrier transport resistance and can achieve the highest efficiency of 8.25%. Overall, the RTS method presents a promising approach for enhancing low-dimensional chalcogenide thin films for emerging superstrate chalcogenide solar cell applications.

Original languageEnglish (US)
Pages (from-to)13814-13823
Number of pages10
JournalACS Applied Materials and Interfaces
Volume17
Issue number9
DOIs
StatePublished - Mar 5 2025

Keywords

  • CdS/SbSe interdiffusion
  • close-spaced sublimation
  • density functional theory
  • power conversion efficiency
  • rapid thermal selenization
  • SbSe thin-film solar cell

ASJC Scopus subject areas

  • General Materials Science

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