Semitransparent Quasi-2D Dion–Jacobson Layered Perovskite Films for Indoor Photovoltaics

Abstract Semitransparent indoor photovoltaics (IPVs) based on layered perovskites offer opportunities for integrated energy harvesting, yet their structural understanding and implementation remain limited. Here, we report the first demonstration of semitransparent thin-film photovoltaic operation using a quasi-2D Dion–Jacobson (DJ) perovskite absorber (n = 5). Owing to the absence of crystallographic information for this phase, density functional theory (DFT) calculations were employed to establish a structural model, which was used to interpret experimental observations. The optimized structure exhibits a layered framework with a slight octahedral tilt and a wide bandgap with nearly direct band-edge characteristics. Experimental results reveal that precursor concentration critically governs crystallization behavior, lattice strain, and film morphology. An optimal condition yields a continuous, low-strain film with favorable semitransparent characteristics and enables corresponding device operation under indoor illumination. These findings highlight the importance of crystallization control in DJ perovskites and provide a framework for designing semitransparent quasi-2D absorbers for IPV applications.

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Publication Details

Journal
Energy & Fuels
Published
2026-10-06
DOI
https://doi.org/10.1021/acs.energyfuels.6c03618
Primary Topic
Perovskite Materials and Applications
Type
article
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article

Semitransparent Quasi-2D Dion–Jacobson Layered Perovskite Films for Indoor Photovoltaics

Taeho Moon, Yong‐Seok Choi, Kwanho Yu, Su Min Heo et al.
Energy & Fuels
Perovskite Materials and Applications
article

Semitransparent Quasi-2D Dion–Jacobson Layered Perovskite Films for Indoor Photovoltaics

Taeho Moon, Yong‐Seok Choi, Kwanho Yu, Su Min Heo, Kunyoung Kim, Jin-Young Lee, Seo-Yeong Kim
article en

Abstract

Abstract Semitransparent indoor photovoltaics (IPVs) based on layered perovskites offer opportunities for integrated energy harvesting, yet their structural understanding and implementation remain limited. Here, we report the first demonstration of semitransparent thin-film photovoltaic operation using a quasi-2D Dion–Jacobson (DJ) perovskite absorber (n = 5). Owing to the absence of crystallographic information for this phase, density functional theory (DFT) calculations were employed to establish a structural model, which was used to interpret experimental observations. The optimized structure exhibits a layered framework with a slight octahedral tilt and a wide bandgap with nearly direct band-edge characteristics. Experimental results reveal that precursor concentration critically governs crystallization behavior, lattice strain, and film morphology. An optimal condition yields a continuous, low-strain film with favorable semitransparent characteristics and enables corresponding device operation under indoor illumination. These findings highlight the importance of crystallization control in DJ perovskites and provide a framework for designing semitransparent quasi-2D absorbers for IPV applications.

Energy & Fuels
Dankook University (KR)
Openalex Percentile: Top 22%
Perovskite Materials and Applications
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