Eliminating the Burn‐in Loss of Efficiency in Organic Solar Cells by Applying Dimer Acceptors as Supramolecular Stabilizers

Author:

Li Yanxun12ORCID,Qi Feng234,Fan Baobing23,Liu Kai‐Kai12,Yu Jifa5,Fu Yuang6,Liu Xianzhao7,Wang Zhen7,Zhang Sen8,Lu Guanghao5,Lu Xinhui6,Fan Qunping8,Chow Philip C. Y.7,Ma Wei8,Lin Francis R.23,Jen Alex K.‐Y.123910ORCID

Affiliation:

1. Department of Materials Science & Engineering City University of Hong Kong Kowloon Hong Kong 999077 China

2. Hong Kong Institute for Clean Energy City University of Hong Kong Kowloon Hong Kong 999077 China

3. Department of Chemistry City University of Hong Kong Kowloon Hong Kong 999077 China

4. College of Materials Science and Engineering Qingdao University Qingdao 266071 P. R. China

5. Frontier Institute of Science and Technology Xi'an Jiaotong University Xi'an 710054 China

6. Department of Physics The Chinese University of Hong Kong New Territories Hong Kong 999077 China

7. Department of Mechanical Engineering The University of Hong Kong Pokfulam Hong Kong 999077 China

8. State Key Laboratory for Mechanical Behavior of Materials Xi'an Jiaotong University Xi'an 710049 China

9. Department of Materials Science & Engineering University of Washington Seattle WA 98195 USA

10. State Key Laboratory of Marine Pollution City University of Hong Kong Kowloon Hong Kong 999077 China

Abstract

AbstractThe meta‐stable active layer morphology of organic solar cells (OSCs) is identified as the main cause of the rapid burn‐in loss of power conversion efficiency (PCE) during long‐term device operation. However, effective strategies to eliminate the associated loss mechanisms from the initial stage of device operation are still lacking, especially for high‐efficiency material systems. Herein, the introduction of molecularly engineered dimer acceptors with adjustable thermal transition properties into the active layer of OSCs to serve as supramolecular stabilizers for regulating the thermal transitions and optimizing the crystallization of the absorber composites is reported. By establishing intimate π‐π interactions with small‐molecule acceptors, these stabilizers can effectively reduce the trap‐state density (Nt) in the devices to achieve excellent PCEs over 19%. More importantly, the low Nt associated with an initially optimized morphology can be maintained under external stresses to significantly reduce the PCE burn‐in loss in devices. This research reveals a judicious approach to improving OPV stability by establishing a comprehensive correlation between material properties, active‐layer morphology, and device performance, for developing burn‐in‐free OSCs.

Funder

City University of Hong Kong

Glaucoma Research Foundation

Shenzhen Science and Technology Innovation Program

Publisher

Wiley

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