Numerical Investigation of CsSnI3 Absorber Layer Parameters Toward Efficient Tin-Based Perovskite Solar Cells

Lead-free tin-based perovskites, particularly CsSnI3, offer a promising route toward environmentally benign photovoltaics, yet their device performance still lags behind lead-based counterparts. In this work, we perform a systematic SCAPS-1D simulation study on a planar heterojunction CsSnI3 solar cell with a TiO2 electron transport layer and a P3HT hole transport layer. We focus on the interplay between absorber-layer properties, acceptor doping concentration, thickness, defect density, carrier mobility, and parasitic resistances. Our results reveal that an optimal acceptor density around 1019 cm−3 balances built-in potential enhancement against Shockley–Read–Hall recombination, yielding the highest efficiency. Thicker absorbers improve light harvesting but aggravate bulk recombination, while defect densities above 1016 cm−3 cause catastrophic performance collapse. High carrier mobility (>1 cm2/V·s) is essential for efficient collection, and series resistance must be kept below 2 Ω·cm2 to avoid fill factor degradation. Under optimized conditions, the device achieves a theoretical efficiency exceeding 27%, demonstrating the critical role of co-optimizing absorber parameters for high-performance, lead-free perovskite solar cells.

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Publication Details

Journal
Molecules
Published
2026-09-11
DOI
https://doi.org/10.3390/molecules31183204
Primary Topic
Perovskite Materials and Applications
Type
article
Field-Weighted Citation Impact
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article

Numerical Investigation of CsSnI3 Absorber Layer Parameters Toward Efficient Tin-Based Perovskite Solar Cells

Qinfang Zhang, Y Zhang, Zihan Tao, Xinru Wang et al.
Molecules
Perovskite Materials and Applications
article

Numerical Investigation of CsSnI3 Absorber Layer Parameters Toward Efficient Tin-Based Perovskite Solar Cells

Qinfang Zhang, Y Zhang, Zihan Tao, Xinru Wang, Benxiong Hu, Xinrui Guan, Hengyu Liu, Songyang Ma, Changxin Sun, Zhongjie Wang
article en

Abstract

Lead-free tin-based perovskites, particularly CsSnI3, offer a promising route toward environmentally benign photovoltaics, yet their device performance still lags behind lead-based counterparts. In this work, we perform a systematic SCAPS-1D simulation study on a planar heterojunction CsSnI3 solar cell with a TiO2 electron transport layer and a P3HT hole transport layer. We focus on the interplay between absorber-layer properties, acceptor doping concentration, thickness, defect density, carrier mobility, and parasitic resistances. Our results reveal that an optimal acceptor density around 1019 cm−3 balances built-in potential enhancement against Shockley–Read–Hall recombination, yielding the highest efficiency. Thicker absorbers improve light harvesting but aggravate bulk recombination, while defect densities above 1016 cm−3 cause catastrophic performance collapse. High carrier mobility (>1 cm2/V·s) is essential for efficient collection, and series resistance must be kept below 2 Ω·cm2 to avoid fill factor degradation. Under optimized conditions, the device achieves a theoretical efficiency exceeding 27%, demonstrating the critical role of co-optimizing absorber parameters for high-performance, lead-free perovskite solar cells.

MoleculesVol. 31(18)
Yancheng Teachers University (CN), Yancheng Institute of Technology (CN), Southeast University (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 20%
Perovskite Materials and Applications
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Numerical Investigation of CsSnI3 Absorber Layer Parameters Toward Efficient Tin-Based Perovskite Solar Cells — Qinfang Zhang, Y Zhang, et al. · Molecules (2026) | TGRS Research Map | TGRS