Modulation of Crystal Plane Growth for Efficient and Stable Perovskite Solar Cells

K Kaikai Liu (Department of Materials Science and Engineering) J Jiacheng He (College of Chemistry and Chemical Engineering/Film Energy Chemistry for Jiangxi Provincial Key Laboratory (FEC), Nanchang University, Nanchang, China.) Z Zhao Guo (College of Chemistry and Chemical Engineering/Institute of Polymers and Energy Chemistry (IPEC) Nanchang University Nanchang China) J Jiajun Ye (College of Chemistry and Chemical Engineering/Institute of Polymers and Energy Chemistry (IPEC) Nanchang University Nanchang China) Y Yang Zhong (College of Chemistry and Chemical Engineering/Film Energy Chemistry for Jiangxi Provincial Key Laboratory (FEC), Nanchang University, Nanchang, China.) W Wangping Sheng (College of Chemistry and Chemical Engineering/Institute of Polymers and Energy Chemistry (IPEC) Nanchang University Nanchang China) L Licheng Tan (College of Chemistry and Chemical Engineering/Film Energy Chemistry for Jiangxi Provincial Key Laboratory (FEC), Nanchang University, Nanchang, China.) Y Yiwang Chen (College of Chemistry and Chemical Engineering/Film Energy Chemistry for Jiangxi Provincial Key Laboratory (FEC), Nanchang University, Nanchang, China.)

Abstract

ABSTRACT Achieving accurate manipulation over perovskite crystal orientation and phase purity is pivotal for realizing efficient and durable perovskite solar cells. Despite the unique advantages of lead iodide (PbI 2 ) template in the two‐step deposition process for obtaining high‐quality perovskite films, challenges remain in guiding the preferential growth of perovskite crystals due to complex facets of PbI 2 . Herein, highly crystalline PbI 2 with complete (001)‐preferred orientation has been attained by incorporating 2‐phenoxyacetamidine hydrochloride (PhOAaCl), which proficiently minimizes the crystal plane energy. This rationally architectured PbI 2 template orchestrates coherent crystal plane growth of subsequent perovskite with markedly suppressed defect density and exceptional phase purity. Moreover, we further elucidate underlying growth mechanism prevailing at the solid–liquid interface between PbI 2 and organic amine salts from integrated thermodynamic and kinetic perspectives. Consequently, the target photovoltaic device attains a champion efficiency of 26.47%. Notably, the unencapsulated devices exhibit significantly outstanding damp‐heat endurance and operational robustness, while attaining 91% of initial efficiency after 2500 h of maximum power point tracking under persistent illumination in ambient conditions.

Article Details

Volume / Issue Vol. 65, Issue 32
Published August 03, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

K

Kaikai Liu

Department of Materials Science and Engineering

J

Jiacheng He

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

Z

Zhao Guo

College of Chemistry and Chemical Engineering/Institute of Polymers and Energy Chemistry (IPEC) Nanchang University Nanchang China

J

Jiajun Ye

College of Chemistry and Chemical Engineering/Institute of Polymers and Energy Chemistry (IPEC) Nanchang University Nanchang China

Y

Yang Zhong

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

W

Wangping Sheng

College of Chemistry and Chemical Engineering/Institute of Polymers and Energy Chemistry (IPEC) Nanchang University Nanchang China

L

Licheng Tan

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

Y

Yiwang Chen

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