Polymer‐Entangled Spontaneous Pseudo‐Planar Heterojunction for Constructing Efficient Flexible Organic Solar Cells

Author:

Zhang Jiayou1,Mao Houdong2,Zhou Kangkang3,Zhang Lifu1,Luo Dou4,Wang Pei1,Ye Long3,Chen Yiwang125ORCID

Affiliation:

1. National Engineering Research Center for Carbohydrate Synthesis/Key Laboratory of Fluorine and Silicon for Energy Materials and Chemistry of Ministry of Education Jiangxi Normal University 99 Ziyang Avenue Nanchang 330022 China

2. Institute of Polymers and Energy Chemistry (IPEC)/Jiangxi Provincial Key Laboratory of New Energy Chemistry Nanchang University 999 Xuefu Avenue Nanchang 330031 China

3. School of Materials Science & Engineering Tianjin Key Laboratory of Molecular Optoelectronic Science Tianjin University Collaborative Innovation Center of Chemical Science and Engineering (Tianjin) Tianjin 300350 China

4. Department of Electrical & Electronic Engineering Southern University of Science and Technology Shenzhen 518055 China

5. Peking University Yangtze Delta Institute of Optoelectronics Nantong 226010 China

Abstract

AbstractFlexible organic solar cells (FOSCs) have attracted considerable attention from researchers as promising portable power sources for wearable electronic devices. However, insufficient power conversion efficiency (PCE), intrinsic stretchability, and mechanical stability of FOSCs remain severe obstacles to their application. Herein, an entangled strategy is proposed for the synergistic optimization of PCE and mechanical properties of FOSCs through green sequential printing combined with polymer‐induced spontaneous gradient heterojunction phase separation morphology. Impressively, the toughened‐pseudo‐planar heterojunction (Toughened‐PPHJ) film exhibits excellent tensile properties with a crack onset strain (COS) of 11.0%, twice that of the reference bulk heterojunction (BHJ) film (5.5%), which is among the highest values reported for the state‐of‐the‐art polymer/small molecule‐based systems. Finite element simulation of stress distribution during film bending confirms that Toughened‐PPHJ film can release residual stress well. Therefore, this optimal device shows a high PCE (18.16%) with enhanced (short‐circuit current density) JSC and suppressed energy loss, which is a significant improvement over the conventional BHJ device (16.99%). Finally, the 1 cm2 flexible Toughened‐PPHJ device retains more than 92% of its initial PCE (13.3%) after 1000 bending cycles. This work provides a feasible guiding idea for future flexible portable power supplies.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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