Rational Design of Perovskite Precursor Inks for Dip-Coated Perovskite Solar Cells

Abstract Dip-coating is a simple yet versatile deposition method inherently compatible with complex, non-flat surfaces. Unlike conventional horizontal coatings, its vertical withdrawal configuration demands precise control over viscosity, surface tension, evaporation, and gravity to achieve uniform thin films. However, the performance of dip-coated perovskite solar cells (PSCs) has remained limited because commonly used volatile-solvent-dominated precursor inks provide inadequate morphological control. Also, conventional dip-coating strategies for rheological control are unsuitable for PSCs, as polymeric binders or high precursor concentrations can impair crystallization and charge transport. Here, by reversing the conventional DMF-dominant formulation, we identify an NMP-dominant DMF:NMP (= 7:93 (vol%/vol%)) solvent system that enables uniform, pinhole-free perovskite films via dip-coating. The resulting devices exhibit power conversion efficiencies exceeding 25%, representing the highest reported performance for dip-coated PSCs. Moreover, the ink enables conformal coating on textured, curved, and three-dimensionally complex surfaces. This work establishes an ink-design strategy for high-performance dip-coated PSCs, opening a practical pathway toward perovskite photovoltaics on nonplanar and structurally diverse substrates.

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Publication Details

Journal
ACS Energy Letters
Published
2026-09-30
DOI
https://doi.org/10.1021/acsenergylett.6c02079
Primary Topic
Perovskite Materials and Applications
Type
article
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Rational Design of Perovskite Precursor Inks for Dip-Coated Perovskite Solar Cells

Jangwon Seo, Young Yun Kim, Juhwan Noh, Siyoung Q. Choi et al.
ACS Energy Letters
Perovskite Materials and Applications
article

Rational Design of Perovskite Precursor Inks for Dip-Coated Perovskite Solar Cells

Jangwon Seo, Young Yun Kim, Juhwan Noh, Siyoung Q. Choi, Nayoon Kwon, Jongmin Park, Hajin Na, Eunji Hwang, Jin-Soo Kim, Myeongseung Kim
article en

Abstract

Abstract Dip-coating is a simple yet versatile deposition method inherently compatible with complex, non-flat surfaces. Unlike conventional horizontal coatings, its vertical withdrawal configuration demands precise control over viscosity, surface tension, evaporation, and gravity to achieve uniform thin films. However, the performance of dip-coated perovskite solar cells (PSCs) has remained limited because commonly used volatile-solvent-dominated precursor inks provide inadequate morphological control. Also, conventional dip-coating strategies for rheological control are unsuitable for PSCs, as polymeric binders or high precursor concentrations can impair crystallization and charge transport. Here, by reversing the conventional DMF-dominant formulation, we identify an NMP-dominant DMF:NMP (= 7:93 (vol%/vol%)) solvent system that enables uniform, pinhole-free perovskite films via dip-coating. The resulting devices exhibit power conversion efficiencies exceeding 25%, representing the highest reported performance for dip-coated PSCs. Moreover, the ink enables conformal coating on textured, curved, and three-dimensionally complex surfaces. This work establishes an ink-design strategy for high-performance dip-coated PSCs, opening a practical pathway toward perovskite photovoltaics on nonplanar and structurally diverse substrates.

ACS Energy Letters
Korea Advanced Institute of Science and Technology (KR), Korea Research Institute of Chemical Technology (KR), Pusan National University (KR)
Affordable and clean energy
Openalex Percentile: Top 22%
Perovskite Materials and Applications
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Rational Design of Perovskite Precursor Inks for Dip-Coated Perovskite Solar Cells — Jangwon Seo, Young Yun Kim, et al. · ACS Energy Letters (2026) | TGRS Research Map | TGRS