Fluorinated Naphthalene Diimides as Buried Electron Transport Materials Achieve Over 23% Efficient Perovskite Solar Cells

Author:

Li Xiaofeng1,Wang Wanhai1234,Huang Pengyu2,Yang Li14,Hu Jianfei1,Wei Kun1,Gao Liang24,Jiang Yonghe124,Sun Kexuan5,Du Guozheng1,Cai Xuanyi1,Liu Chang5,Tang Weihua1234,Zhang Jinbao14ORCID

Affiliation:

1. College of Materials Fujian Key Laboratory of Advanced Materials Xiamen Key Laboratory of Electronic Ceramic Materials and Devices Xiamen University Xiamen 361005 China

2. Institute of Flexible Electronics (IFE, Future Technologies) College of Materials Innovation Laboratory for Sciences and Technologies of Energy Materials of Fujian Province (IKKEM) Xiamen University Xiamen 361102 China

3. School of Chemistry and Chemical Engineering Nanjing University of Science and Technology Nanjing 210094 China

4. Shenzhen Research Institute of Xiamen University Shenzhen 518000 China

5. Zhejiang Provincial Engineering Research Center of Energy Optoelectronic Materials and Devices Ningbo Institute of Materials Technology & Engineering Chinese Academy of Sciences Ningbo 315201 China

Abstract

AbstractNaphthalene diimides (NDI) are widely serving as the skeleton to construct electron transport materials (ETMs) for optoelectronic devices. However, most of the reported NDI‐based ETMs suffer from poor interfaces with the perovskite which deteriorates the carrier extraction and device stability. Here, a representative design concept for editing the peripheral groups of NDI molecules to achieve multifunctional properties is introduced. The resulting molecule 2,7‐bis(2,2,3,3,4,4,4‐heptafluorobutyl)benzo[lmn][3,8]phenanthroline‐1,3,6,8(2H,7H)‐tetraone (NDI‐C4F) incorporated with hydrophobic fluorine units contributes to the prevention of excessive molecular aggregation, the improvement of surface wettability and the formation of strong chemical coordination with perovskite precursors. All these features favor retarding the perovskite crystallization and achieving superior buried interfaces, which subsequently promote charge collection and improve the structural compatibility between perovskite and ETMs. The corresponding PSCs based on low‐temperature processed NDI‐C4F yield a record efficiency of 23.21%, which is the highest reported value for organic ETMs in n‐i‐p PSCs. More encouragingly, the unencapsulated devices with NDI‐C4F demonstrate extraordinary stability by retaining over 90% of their initial PCEs after 2600 h in air. This work provides an alternative molecular strategy to engineer the buried interfaces and can trigger further development of organic ETMs toward reliable PSCs.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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