Identification the Role of Grain Boundaries in Polycrystalline Photovoltaics via Advanced Atomic Force Microscope

Author:

Yang Liu1,Wang Yanyan12,Wang Xu1,Shafique Shareen1,Zheng Fei1,Huang Like1,Liu Xiaohui1,Zhang Jing1,Zhu Yuejin3,Xiao Chuanxiao4,Hu Ziyang1ORCID

Affiliation:

1. Department of Microelectronic Science and Engineering Laboratory of Clean Energy Storage and Conversion School of Physical Science and Technology Ningbo Collaborative Innovation Center of Nonlinear Calamity System of Ocean and Atmosphere Ningbo University Ningbo 315211 China

2. Center for Micro‐Nano Systems School of Information Science and Technology (SIST) Fudan University Shanghai 200433 China

3. School of Science and Engineering College of Science and Technology Ningbo University Ningbo 315300 China

4. Ningbo Institute of Materials Technology and Engineering Chinese Academy of Sciences (CAS) Ningbo Zhejiang 315201 China

Abstract

AbstractAtomicforce microscopy (AFM)‐based scanning probing techniques, including Kelvinprobe force microscopy (KPFM) and conductive atomic force microscopy (C‐AFM), have been widely applied to investigate thelocal electromagnetic, physical, or molecular characteristics of functional materials on a microscopic scale. The microscopic inhomogeneities of the electronic properties of polycrystalline photovoltaic materials can be examined by these advanced AFM techniques, which bridge the local properties of materials to overall device performance and guide the optimization of the photovoltaic devices. In this review, the critical roles of local optoelectronic heterogeneities, especially at grain interiors (GIs) and grain boundaries (GBs) of polycrystalline photovoltaic materials, including versatile polycrystalline silicon, inorganic compound materials, and emerging halide perovskites, studied by KPFM and C‐AFM, are systematically identified. How the band alignment and electrical properties of GIs and GBs affect the carrier transport behavior are discussed from the respective of photovoltaic research. Further exploiting the potential of such AFM‐based techniques upon a summary of their up‐to‐date applications in polycrystalline photovoltaic materials is beneficial to acomprehensive understanding of the design and manipulation principles of thenovel solar cells and facilitating the development of the next‐generation photovoltaics and optoelectronics.

Funder

Science and Technology Innovation 2025 Major Project of Ningbo

Natural Science Foundation of Ningbo Municipality

National Natural Science Foundation of China

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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