Engineering Amorphous–Crystallized Interface of ZrNx Barriers for Stable Inverted Perovskite Solar Cells

Author:

Xiao Mengqi1,Yuan Guizhou1,Lu Ziheng2,Xia Jing3,Li Dong1,Chen Ying1,Zhang Ying1,Pei Fengtao1,Chen Changli1,Bai Yang1,Song Tinglu1,Dou Jie1,Li Yujing1,Chen Yihua1,Xu Zipeng1,Yang Xiaoyan1,Liu Zelong1,Liu Xingyu1,Zhu Cheng145,Chen Qi1ORCID

Affiliation:

1. Beijing Key Laboratory of Construction Tailorable Advanced Functional Materials and Green Applications MIIT Key Laboratory for Low‐dimensional Quantum Structure and Devices Experimental Center of Advanced Materials School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 China

2. Department of Materials Science and Metallurgy University of Cambridge Cambridge CB3 0FS UK

3. Key Laboratory of Photochemical Conversion and Optoelectronic Materials Technical Institute of Physics and Chemistry Chinese Academy of Sciences Beijing 100190 China

4. Advanced Research Institute of Multidisciplinary Science Beijing Institute of Technology Beijing 100081 China

5. State Key Laboratory of Explosion Science and Technology Beijing Institute of Technology Beijing 100081 China

Abstract

AbstractIt is challenging to achieve long‐term stability of perovskite solar cells due to the corrosion and diffusion of metal electrodes. Integration of compact barriers into devices has been recognized as an effective strategy to protect the perovskite absorber and electrode. However, the difficulty is to construct a thin layer of a few nanometers that can delay ion migration and impede chemical reactions simultaneously, in which the delicate microstructure design of a stable material plays an important role. Herein, ZrNx barrier films with high amorphization are introduced in p–i–n perovskite solar cells. To quantify the amorphous–crystalline (a–c) density, pattern recognition techniques are employed. It is found the decreasing a–c interface in an amorphous film leads to dense atom arrangement and uniform distribution of chemical potential, which retards the interdiffusion at the interface between ions and metal atoms and protect the electrodes from corrosion. The resultant solar cells exhibit improved operational stability, which retains 88% of initial efficiency after continuous maximum power point tracking under 1‐Sun illumination at room temperature (25 °C) for 1500 h.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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