Coffee‐Ring‐Engineered Interfacial Layer Enables Fluid‐Locking for Scalable Perovskite Photovoltaics

C Chenxiang Gong C Cong Wang (Key Laboratory of Preclinical Study for New Drugs of Gansu Province, School of Basic Medical Sciences & Research Unit of Peptide Science, Chinese Academy of Medical Sciences, 2019RU066) B Baojin Fan S Siyi Shi H Hao Yuan X Xiangchuan Meng (Film Energy Chemistry for Jiangxi Provincial Key Laboratory Institute of Polymers and Energy Chemistry School of Physics and Materials Science Nanchang University 999 Xuefu Avenue Nanchang 330031 P.R. China) H Hongxiang Li (College of Polymer Science and Engineering State Key Laboratory of Polymer Materials Engineering) M Muhammad Bilal Khan Niazi S Shaohua Zhang X Xiaotian Hu Y Yiwang Chen (College of Chemistry and Chemical Engineering/Film Energy Chemistry for Jiangxi Provincial Key Laboratory (FEC), Nanchang University, Nanchang, China.)

Abstract

ABSTRACT Perovskite solar cells (PSCs) have emerged as a promising photovoltaic technology, offering outstanding power conversion efficiency and significant potential for large‐scale deployment. However, during printed fabrication, the intrinsic coffee‐ring effect induces heterogeneous deposition of colloidal particles, leading to non‐uniform crystallization that critically limits the performance of large‐area devices. This issue not only complicates the crystallization dynamics of perovskite films but also impedes the development of a universal fluidic control strategy applicable across device scales. In this work, we harnessed the mechanisms of coffee‐ring formation and employed rapid drying combined with droplet fragmentation to construct a size‐tunable flow‐locking network at the buried interface. This network effectively confines the disordered migration of perovskite colloidal particles throughout the flowing and drying stages, suppressing the formation of macroscopic coffee rings and mitigating their detrimental impact on device crystallization and performance. As a result, the optimized PSCs deliver a high power conversion efficiency (PCE) of 26.61%, while a large‐area module (100 cm 2 ) maintains an impressive PCE of 21.39%, demonstrating excellent scalability and device uniformity.

Article Details

Volume / Issue Vol. 38, Issue 11
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

C

Chenxiang Gong

C

Cong Wang

Key Laboratory of Preclinical Study for New Drugs of Gansu Province, School of Basic Medical Sciences & Research Unit of Peptide Science, Chinese Academy of Medical Sciences, 2019RU066

B

Baojin Fan

S

Siyi Shi

H

Hao Yuan

X

Xiangchuan Meng

Film Energy Chemistry for Jiangxi Provincial Key Laboratory Institute of Polymers and Energy Chemistry School of Physics and Materials Science Nanchang University 999 Xuefu Avenue Nanchang 330031 P.R. China

H

Hongxiang Li

College of Polymer Science and Engineering State Key Laboratory of Polymer Materials Engineering

M

Muhammad Bilal Khan Niazi

S

Shaohua Zhang

X

Xiaotian Hu

Y

Yiwang Chen

College of Chemistry and Chemical Engineering/Film Energy Chemistry for Jiangxi Provincial Key Laboratory (FEC), Nanchang University, Nanchang, China.