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可充电电池中锂离子的分析型环形暗场扫描透射电子显微镜成像

Analytical ABF-STEM imaging of Li ions in rechargeable batteries.

作者信息

Wen Yuren, Shang Tongtong, Gu Lin

机构信息

Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.

Collaborative Innovation Center of Quantum Matter, Beijing 100190, China.

出版信息

Microscopy (Oxf). 2017 Feb 8;66(1):25-38. doi: 10.1093/jmicro/dfw100.

Abstract

Rechargeable batteries are being intensively investigated in an attempt to solve the energy issues while meeting the environmental demands. Even though Li-ion batteries (LIB) with high energy and light weight have been commercialized within the last 20 years, these devices currently require higher energy density, output power and sustainability characteristics. The atomic behavior of Li ion that determines LIB's performance is hardly characterized by transmission electron microscopy (TEM) owing to its weak electron-scattering power. In this sense, annular bright-field (ABF) scanning TEM (STEM), in which the contrast has a low scaling rate with the atomic number, has been proven to be a robust technique for simultaneous imaging of light and heavy elements. The s-state model, in which electron channeling along the atomic column allows the intensity to be focusing in the forward direction, has successfully explained the theory of ABF contrast. Furthermore, the detector angle range, the defocus-thickness dependence and the accelerating voltage (among other parameters) were discussed for optimized imaging conditions. ABF-STEM has shown powerful capabilities in resolving the atomic structure and the chemistry of electrodes (e.g. Li-ion occupation and diffusion, phase transformation and interface reaction), thereby providing critical insights into the physical properties, the battery performance and the design guidance of LIB. The future directions of ABF imaging for the characterization of LIB materials were also reviewed.

摘要

为了解决能源问题并满足环境需求,人们正在对可充电电池进行深入研究。尽管高能量、重量轻的锂离子电池(LIB)在过去20年内已实现商业化,但目前这些装置仍需要更高的能量密度、输出功率和可持续性特征。由于锂离子的电子散射能力较弱,通过透射电子显微镜(TEM)很难表征决定LIB性能的锂离子的原子行为。从这个意义上讲,环形明场(ABF)扫描透射电子显微镜(STEM)(其对比度与原子序数的缩放率较低)已被证明是一种用于同时成像轻元素和重元素的强大技术。s态模型(其中沿原子柱的电子通道化使强度向前聚焦)成功地解释了ABF对比度理论。此外,还讨论了探测器角度范围、散焦厚度依赖性和加速电压(以及其他参数)以优化成像条件。ABF-STEM在解析电极的原子结构和化学性质(例如锂离子占据和扩散、相变和界面反应)方面已展现出强大能力,从而为LIB的物理性质、电池性能和设计指导提供了关键见解。本文还综述了用于表征LIB材料的ABF成像的未来发展方向。

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