Cathode engineering with perylene-diimide interlayer enabling over 17% efficiency single-junction organic solar cells

Jia Yao(Beijing University of Chemical Technology), Beibei Qiu(Chinese Academy of Sciences), Zhiguo Zhang(Beijing University of Chemical Technology), Ling‐Wei Xue(Beijing University of Chemical Technology), Rui Wang(Collaborative Innovation Center of Advanced Microstructures), Chunfeng Zhang(Collaborative Innovation Center of Advanced Microstructures), Shanshan Chen(Chongqing University), Qiuju Zhou(Xinyang Normal University), Chenkai Sun(Chinese Academy of Sciences), Changduk Yang(Ulsan National Institute of Science and Technology), Min Xiao(Collaborative Innovation Center of Advanced Microstructures), Lei Meng(Chinese Academy of Sciences), Yongfang Li(Chinese Academy of Sciences)
Nature Communications
June 1, 2020
Cited by 758Open Access
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Abstract

In organic solar cells (OSCs), cathode interfacial materials are generally designed with highly polar groups to increase the capability of lowering the work function of cathode. However, the strong polar group could result in a high surface energy and poor physical contact at the active layer surface, posing a challenge for interlayer engineering to address the trade-off between device stability and efficiency. Herein, we report a hydrogen-bonding interfacial material, aliphatic amine-functionalized perylene-diimide (PDINN), which simultaneously down-shifts the work function of the air stable cathodes (silver and copper), and maintains good interfacial contact with the active layer. The OSCs based on PDINN engineered silver-cathode demonstrate a high power conversion efficiency of 17.23% (certified value 16.77% by NREL) and high stability. Our results indicate that PDINN is an effective cathode interfacial material and interlayer engineering via suitable intermolecular interactions is a feasible approach to improve device performance of OSCs.


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