Transparent Anti‐Icing Moiré‐Film Enhancing Photovoltaic Stability in Extreme Cold Climates

T Tongtong Hao (School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 China) P Pengxiang Zhang C Cheng Chi Y Yang Wang W Wenqiang Zhang X Xiaoting Chen D Dan Wang X Xiaofei Chen (School of Materials Science and Engineering) J Jianyong Ye (School of Physics and Materials Science Nanchang University Nanchang 330031 China) W Weifan Chen (School of Physics and Materials Science Nanchang University Nanchang 330031 China) F Fenglong Kang (School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 China) Y Yang Bai Q Qi Chen C Cheng Zhu (School of Interdisciplinary Sciences, State Key Laboratory of Environment Characteristics and Effects for Near-Space) Z Zhiyuan He (Homogeneous, Supramolecular Catalysis, and Bio-Inspired Catalysis Group, van ’t Hoff Institute for Molecular Sciences (HIMS))

Abstract

Abstract Accelerated degradation and power loss of solar cells in cold climates remain major challenges to renewable energy deployment. The photothermal film offers a promising solution by converting sunlight into heat to remove ice and snow from solar panels. However, enhancing photothermal performance often entails reduced visible (VIS) light transmittance of films, thereby compromising solar cell efficiency. Tailoring optical designs to balance the optimal light absorption between the device and the film is essential for photovoltaic anti‐icing/snow. Herein, we present outdoor data from grid‐connected photovoltaic modules, revealing a 58% electricity loss caused by ice/snow shading effects. To address this, we developed transparent photothermal films featuring a moiré light‐trapping structure, achieving high VIS transmittance (∼93.0%) and enhanced near‐infrared absorption (∼65.8%). We confirmed that the meter‐scale photothermal film ensures that operational modules remain ice‐free in −20 °C outdoor conditions, and the ice‐melting phase diagram indicates its effective anti‐icing range down to −30 °C under AM 1.5G, one‐sun illumination. Day‐night cycling tests on perovskite cells demonstrated sustained anti‐icing performance, yielding a 7.5‐fold increase in daily power output during winter conditions. The film's long‐term stability and robust de‐icing performance under weak‐light scenarios demonstrate the its feasibility for extreme cold applications.

Article Details

Volume / Issue Vol. 37, Issue 39
Published October 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (15)

T

Tongtong Hao

School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 China

P

Pengxiang Zhang

C

Cheng Chi

Y

Yang Wang

W

Wenqiang Zhang

X

Xiaoting Chen

D

Dan Wang

X

Xiaofei Chen

School of Materials Science and Engineering

J

Jianyong Ye

School of Physics and Materials Science Nanchang University Nanchang 330031 China

W

Weifan Chen

School of Physics and Materials Science Nanchang University Nanchang 330031 China

F

Fenglong Kang

School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 China

Y

Yang Bai

Q

Qi Chen

C

Cheng Zhu

School of Interdisciplinary Sciences, State Key Laboratory of Environment Characteristics and Effects for Near-Space

Z

Zhiyuan He

Homogeneous, Supramolecular Catalysis, and Bio-Inspired Catalysis Group, van ’t Hoff Institute for Molecular Sciences (HIMS)