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探究锂离子电池层状氧化物正极材料在快速充放电循环和加热过程中结构变化的复杂性。

Probing the Complexities of Structural Changes in Layered Oxide Cathode Materials for Li-Ion Batteries during Fast Charge-Discharge Cycling and Heating.

机构信息

Chemistry Division, Brookhaven National Laboratory , Upton, New York 11973, United States.

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

出版信息

Acc Chem Res. 2018 Feb 20;51(2):290-298. doi: 10.1021/acs.accounts.7b00506. Epub 2018 Jan 19.

DOI:10.1021/acs.accounts.7b00506
PMID:29350034
Abstract

The rechargeable lithium-ion battery (LIB) is the most promising energy storage system to power electric vehicles with high energy density and long cycling life. However, in order to meet customers' demands for fast charging, the power performances of current LIBs need to be improved. From the cathode aspect, layer-structured cathode materials are widely used in today's market and will continue to play important roles in the near future. The high rate capability of layered cathode materials during charging and discharging is critical to the power performance of the whole cell and the thermal stability is closely related to the safety issues. Therefore, the in-depth understanding of structural changes of layered cathode materials during high rate charging/discharging and the thermal stability during heating are essential in developing new materials and improving current materials. Since structural changes take place from the atomic level to the whole electrode level, combination of characterization techniques covering multilength scales is quite important. In many cases, this means using comprehensive tools involving diffraction, spectroscopy, and imaging to differentiate the surface from the bulk and to obtain structural/chemical information with different levels of spatial resolution. For example, hard X-ray spectroscopy can yield the bulk information and soft X-ray spectroscopy can give the surface information; X-ray based imaging techniques can obtain spatial resolution of tens of nanometers, and electron-based microcopy can go to angstroms. In addition to challenges associated with different spatial resolution, the dynamic nature of structural changes during high rate cycling and heating requires characterization tools to have the capability of collecting high quality data in a time-resolved fashion. Thanks to the advancement in synchrotron based techniques and high-resolution electron microscopy, high temporal and spatial resolutions can now be achieved. In this Account, we focus on the recent works studying kinetic and thermal properties of layer-structured cathode materials, especially the structural changes during high rate cycling and the thermal stability during heating. Advanced characterization techniques relating to the rate capability and thermal stability will be introduced. The different structure evolution behavior of cathode materials cycled at high rate will be compared with that cycled at low rate. Different response of individual transition metals and the inhomogeneity in chemical distribution will be discussed. For the thermal stability, the relationship between structural changes and oxygen release will be emphatically pointed out. In all these studies being reviewed, advanced characterization techniques are critically applied to reveal complexities at multiscale in layer-structured cathode materials.

摘要

可充电锂离子电池(LIB)是最有前途的储能系统,能够为电动汽车提供高能量密度和长循环寿命。然而,为了满足客户对快速充电的需求,需要提高当前 LIB 的功率性能。从阴极方面来看,层状阴极材料在当今市场上得到了广泛应用,并将在不久的将来继续发挥重要作用。层状阴极材料在充电和放电过程中的高倍率性能对于整个电池的功率性能至关重要,而热稳定性与安全问题密切相关。因此,深入了解高倍率充电/放电过程中层状阴极材料的结构变化以及加热过程中的热稳定性对于开发新材料和改进现有材料至关重要。由于结构变化发生在从原子水平到整个电极水平的范围内,因此结合涵盖多个长度尺度的表征技术非常重要。在许多情况下,这意味着使用涉及衍射、光谱和成像的综合工具来区分表面和体相,并获得具有不同空间分辨率的结构/化学信息。例如,硬 X 射线光谱可以提供体相信息,软 X 射线光谱可以提供表面信息;基于 X 射线的成像技术可以获得几十纳米的空间分辨率,而基于电子的显微镜可以达到埃。除了与不同空间分辨率相关的挑战外,高速率循环和加热过程中结构变化的动态性质还要求表征工具具有以时间分辨方式收集高质量数据的能力。得益于同步加速器技术和高分辨率电子显微镜的进步,现在可以实现高时间和空间分辨率。在本报告中,我们重点介绍了最近研究层状阴极材料动力学和热性质的工作,特别是在高速率循环过程中的结构变化和加热过程中的热稳定性。将介绍与倍率性能和热稳定性相关的先进表征技术。将比较高速率循环和低速率循环的阴极材料的不同结构演变行为。将讨论各个过渡金属的不同响应和化学分布的不均匀性。对于热稳定性,将重点指出结构变化与氧释放之间的关系。在所有被审查的研究中,先进的表征技术被批判性地应用于揭示层状阴极材料多尺度的复杂性。

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