Efficient and Stable Flexible Organic Solar Cells via the Enhanced Optical‐Thermal Radiative Transfer

Author:

Zhang Ye‐Fan1,Ren Hao1,Chen Jing‐De12,Hou Hong‐Yi1,Liu Hui‐Min1,Tian Shuo12,Chen Wei‐Shuo1,Ge Heng‐Ru1,Li Yan‐Qing3,Mao Hongying4,Su Zisheng5,Tang Jian‐Xin16ORCID

Affiliation:

1. Jiangsu Key Laboratory for Carbon‐Based Functional Materials & Devices Institute of Functional Nano & Soft Materials (FUNSOM) Soochow University Suzhou Jiangsu 215123 P. R. China

2. Jiangsu Key Laboratory of Advanced Negative Carbon Technologies Soochow University Suzhou Jiangsu 215123 P. R. China

3. School of Physics and Electronic Science Ministry of Education Nanophotonics and Advanced Instrument Engineering Research Center East China Normal University Shanghai 200241 P. R. China

4. School of Physics Hangzhou Normal University Hangzhou 311121 P. R. China

5. College of Physics and Information Engineering Key Laboratory of Information Functional Material for Fujian Higher Education Quanzhou Normal University Quanzhou 362000 P. R. China

6. Macao Institute of Materials Science and Engineering (MIMSE) Faculty of Innovation Engineering Macau University of Science and Technology Taipa Macao SAR 999078 P. R. China

Abstract

AbstractHeating is a knotty factor contributing to device degradation of flexible organic solar cells (FOSCs), and thermal regulation plays a crucial role in the realization of long operational lifetime. Herein, a passive cooling strategy for stable FOSCs is proposed by boosting the optical‐thermal radiative transfer to reduce the insufficient thermal dissipation and the elevated temperature caused by irradiation‐induced heating, while retaining their flexibility and portability. A spectrally selective coupling structure consisting of subwavelength hemisphere pattern and distributed Bragg reflector is integrated into FOSCs to collectively enhance out‐coupling of infrared radiation and limit near‐infrared absorption‐induced heat generation, leading to a reduced heat power intensity of 292.5 W cm−2 and the decreased working temperature by 9.6 °C under outdoor sunlight irradiation. The D18:Y6:PC71BM‐based FOSCs achieve a power conversion efficiency of over 17% with a prolonged T80 lifetime as long as one year under real outdoor working conditions. These results represent a new opportunity for enhancing the operational stability of FOSCs.

Funder

National Natural Science Foundation of China

Science and Technology Development Fund

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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