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采用高分辨率先进原子力显微镜(AFM)技术对 LiCoO 正极薄膜进行多维特性研究。

Multi-characterization of LiCoO cathode films using advanced AFM-based techniques with high resolution.

机构信息

Department of Applied Physics, Beihang University, Beijing, 100191, People's Republic of China.

Key Laboratory of Micro-nano Measurement-Manipulation and Physics (Ministry of Education), Beihang University, Beijing, 100191, People's Republic of China.

出版信息

Sci Rep. 2017 Sep 18;7(1):11164. doi: 10.1038/s41598-017-11623-0.

Abstract

The thin film Li-ion batteries have been extensively used in micro-electronic devices due to their miniaturization, high capacity density and environmental friendliness, etc. In order to further prolong the lifetime of the film batteries, one of important tasks is to explore the aging mechanisms of the cathode films. In this paper, we especially focused on the multi-characterization of the LiCoO film in nanoscale, which is carried out by combining advanced AFM-based techniques with capacity measurement. The surface morphology, contact stiffness as well as surface potential were measured by amplitude modulation-frequency modulation (AM-FM) and kelvin probe force microscope (KPFM), respectively. Remarkable changes after different numbers of charge/discharge cycling were observed and the intrinsic reasons of them were discussed in detail. To acknowledge the relationship with these microscopic changes, the macro-capacity of the thin films was also measured by the galvanostatic charge/discharge method. These comprehensive results would provide a deep insight into the fading mechanism of the cathode film, being helpful for the design and selection of the cathode film materials for high performance batteries.

摘要

由于其微型化、高容量密度和环境友好性等特点,薄膜锂离子电池在微电子设备中得到了广泛应用。为了进一步延长薄膜电池的使用寿命,其中一个重要任务是探索阴极薄膜的老化机制。在本文中,我们特别关注了纳米尺度下 LiCoO 薄膜的多特性,通过结合先进的基于原子力显微镜的技术和容量测量来实现。通过振幅调制-频率调制(AM-FM)和 Kelvin 探针力显微镜(KPFM)分别测量了表面形貌、接触硬度和表面电势。观察到经过不同次数的充放电循环后发生了显著的变化,并详细讨论了它们的内在原因。为了了解与这些微观变化的关系,还通过恒流充放电法测量了薄膜的宏观容量。这些综合结果将深入了解阴极薄膜的衰减机制,有助于设计和选择高性能电池的阴极薄膜材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/35fb/5603513/5a6000a8919d/41598_2017_11623_Fig1_HTML.jpg

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