CHAPTER 2. Layered Ni-rich Cathode Materials

Seung‐Taek Myung, Chang-Heum Jo, Aishuak Konarov
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引用次数: 2

Abstract

Recent lithium-ion battery (LIB) technologies power electric vehicles (EVs) to run approximately 220 miles in a single charge, and further effort to increase the energy density of LIBs is being made to run LIB-mounted EVs up to 300 miles in the next few years. Among several important components of LIBs, cathode materials play a significant role in contributing to cost, safety issues, and more importantly energy density. For this concern, Ni-rich cathode materials are indispensable because of their high capacity, reaching over 200 mAh g−1. To commercialize Ni-rich cathode material, tremendous work has been carried out to stabilize the crystal structure and minimize the side reaction with electrolytes, namely, doping, surface modification from nano- to microscale, densification of secondary particles, morphological alternation of primary particles in a secondary particle, and so on. The approaches that have pursued will be discussed in this chapter followed by a perspective.
第二章。层状富镍正极材料
最近的锂离子电池(LIB)技术为电动汽车提供了一次充电约220英里的动力,并且正在进一步努力提高锂离子电池的能量密度,以便在未来几年内使安装在锂离子电池上的电动汽车行驶300英里。在锂离子电池的几个重要组成部分中,阴极材料在成本、安全问题和更重要的能量密度方面发挥着重要作用。对于这一问题,富镍阴极材料是必不可少的,因为它们的高容量,达到超过200mah g−1。为了实现富镍正极材料的商业化,人们进行了大量的工作来稳定晶体结构,减少与电解质的副反应,即掺杂、从纳米到微观的表面改性、二次粒子的致密化、一次粒子在二次粒子中的形态改变等。所采取的方法将在本章中讨论,然后是一个观点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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