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Using In-Situ Laboratory and Synchrotron-Based X-ray Diffraction for Lithium-Ion Batteries Characterization: A Review on Recent Developments

机译:使用原位实验室和基于同步的基于同步锂离子电池的X射线衍射表征:近期发展的综述

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Renewable technologies, and in particular the electric vehicle revolution, have generated tremendous pressure for the improvement of lithium ion battery performance. To meet the increasingly high market demand, challenges include improving the energy density, extending cycle life and enhancing safety. In order to address these issues, a deep understanding of both the physical and chemical changes of battery materials under working conditions is crucial for linking degradation processes to their origins in material properties and their electrochemical signatures. In situ and operando synchrotron-based X-ray techniques provide powerful tools for battery materials research, allowing a deep understanding of structural evolution, redox processes and transport properties during cycling. In this review, in situ synchrotron-based X-ray diffraction methods are discussed in detail with an emphasis on recent advancements in improving the spatial and temporal resolution. The experimental approaches reviewed here include cell designs and materials, as well as beamline experimental setup details. Finally, future challenges and opportunities for battery technologies are discussed.
机译:可再生技术,特别是电动汽车革命,对锂离子电池性能的提高产生了巨大的压力。为满足市场需求越来越高,挑战包括改善能量密度,延长循环寿命和增强安全性。为了解决这些问题,深入了解工作条件下电池材料的物理和化学变化是关键,用于将劣化过程与其原料性质及其电化学签名的起源联系起来至关重要。原位和操作道合同步rotron的X射线技术为电池材料的研究提供了强大的工具,允许在循环过程中深入了解结构演化,氧化还原过程和运输特性。在该综述中,以原位同步的X射线衍射方法详细讨论,重点是提高空间和时间分辨率的最新进步。这里审查的实验方法包括细胞设计和材料,以及光束线实验设置细节。最后,讨论了未来的挑战和电池技术的机会。

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