Growth Behavior and Interface Engineering for Photovoltaic Applications of Co-evaporated Sb2Se3 Thin Films on Mo Foil

Abstract

Antimony selenide (Sb2Se3) is a promising light-absorbing material for thin-film photovoltaics.Herein, we report a strategy for the fabrication of flexible Sb2Se3 solar cells on metal-foil substrates. A thin absorber grown on Mo foil exhibited poor performance owing to structural defect formation caused by the rough substrate. Although thicker films (~1.6 µm) are generally expected to suffer from high internal resistance, we found that unique vertical void formation enabled efficient charge transport, resulting in high-performance devices. Furthermore, oxide removal via NaOH treatment and the introduction of a preformed MoSe2 interlayer promoted the preferred [hk1] orientation and optimized the back contact. This dual modification simultaneously improved the film morphology and electronic properties, forming a pseudo-3D p-n junction that enhanced carrier collection. Consequently, the flexible co-evaporated Sb2Se3 solar cells achieved a power conversion efficiency of 4.45%. These findings provide mechanistic insights and practical guidelines for the design of high-performance flexible Sb2Se3 photovoltaics.

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Article information

Article type
Paper
Submitted
11 Oct 2025
Accepted
24 Dec 2025
First published
26 Dec 2025

J. Mater. Chem. A, 2026, Accepted Manuscript

Growth Behavior and Interface Engineering for Photovoltaic Applications of Co-evaporated Sb2Se3 Thin Films on Mo Foil

V. HOANG, S. Park, J. Lee, D. Son, D. Hwang, Q. Le-Van, P. H. H. Vo, S. Y. Kim, S. Sung, D. Kim, K. Yang and J. Kang, J. Mater. Chem. A, 2026, Accepted Manuscript , DOI: 10.1039/D5TA08294C

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