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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >In situ study of Li-ions diffusion and deformation in Li-rich cathode materials by using scanning probe microscopy techniques
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In situ study of Li-ions diffusion and deformation in Li-rich cathode materials by using scanning probe microscopy techniques

机译:用扫描探针显微镜技术原位研究富富阴极材料中富富阴极材料的变形

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摘要

In this paper, the scanning probe microscopy (SPM) based techniques, namely, conductive-AFM, electrochemical strain microscopy (ESM) and AM-FM (amplitude modulation-frequency modulation) techniques, are used to in situ characterize the changes in topography, conductivity and elastic properties of Li-rich layered oxide cathode (Li1.2Mn0.54Ni0.13Co0.13O2) materials, in the form of nanoparticles, when subject to the external electric field. Nanoparticles are the basic building blocks for composite cathode in a Li-ion rechargeable battery. Characterization of the structure and electrochemical properties of the nanoparticles is very important to understand the performance and reliability of the battery materials and devices. In this study, the conductivity, deformation and mechanical properties of the Li-rich oxide nanoparticles under different polarities of biases are studied using the above-mentioned SPM techniques. This information can be correlated with the Li+-ion diffusion and migration in the particles under external electrical field. The results also confirm that the SPM techniques are ideal tools to study the changes in various properties of electrode materials at nano-to micro-scales during or after the 'simulated' battery operation conditions. These techniques can also be used to in situ characterize the electrochemical performances of other energy storage materials, especially in the form of the nanoparticles.
机译:在本文中,基于扫描探针显微镜(SPM)技术,即导电AFM,电化学应变显微镜(ESM)和AM-FM(幅度调制 - 频率调制)技术,用于原位表征地形的变化,当外部电场受到纳米颗粒的形式时,锂富含层氧化物阴极(Li1.2Mn0.54Ni0.13CO0.13O2)材料的电导率和弹性性质。纳米粒子是锂离子可充电电池中复合阴极的基本构建块。纳米颗粒的结构和电化学性质的表征对于了解电池材料和装置的性能和可靠性非常重要。在该研究中,使用上述SPM技术研究了在不同极性下的富富氧化物纳米颗粒的电导率,变形和机械性能。该信息可以与外部电场下的颗粒中的Li +Ion扩散和迁移相关联。结果还证实,SPM技术是在“模拟”电池操作条件下或之后的纳米电极材料的电极材料各种性能变化的理想工具。这些技术也可以用于原位表征其他能量储存材料的电化学性能,尤其是纳米颗粒的形式。

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