Scientific advancements in Antimony Selenosulfide Solar Cells

Abstract

Antimony Selenosulfide [〖Sb〗_2 〖(S,Se)〗_3] is a scientifically interesting, and technologically intriguing photovoltaic (PV) material for the next generation of solar cells. Recently, power conversion efficiency (PCE) of 10.81% and 20.86% have been achieved in single-junction 〖Sb〗_2 〖(S,Se)〗_3 cells, under standard (AM 1.5G) and indoor illumination (1000 lux), respectively. Prototype 〖Si/Sb〗_2 〖(S,Se)〗_3 and 〖〖Sb〗_2 〖Se〗_2/Sb〗_2 〖(S,Se)〗_3 tandem solar cells have demonstrated PCE exceeding 10%. However, various intractable factors, mainly the anisotropic carrier transport, complex defect dynamics, and non-optimized interfaces cumulate to notable photocurrent and photovoltage losses in 〖Sb〗_2 〖(S,Se)〗_3 solar cells. A comprehensive understanding of these performance-limiting factors can be instrumental in amplifying the PCE of 〖Sb〗_2 〖(S,Se)〗_3 solar cells, beyond state-of-the-art. In this context, this review provides a comprehensive discussion of device engineering strategies, incorporating key insights from device simulations. This work establishes a robust framework for enhancing the PCE and advancing the commercialization prospects of this emerging PV technology.

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Article information

Article type
Review Article
Submitted
29 May 2025
Accepted
13 Nov 2025
First published
13 Nov 2025

J. Mater. Chem. C, 2025, Accepted Manuscript

Scientific advancements in Antimony Selenosulfide Solar Cells

S. Barthwal, S. Singh, K. Haunsbhavi, R. Gupta, V. V. Sharon, S. Maidur, A. K. Chauhan, D. E. Motaung, R. Kumar and K. Ramesh, J. Mater. Chem. C, 2025, Accepted Manuscript , DOI: 10.1039/D5TC02105G

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