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Recent progress in theoretical and computational investigations of Li-ion battery materials and electrolytes

机译:锂离子电池材料和电解质理论与计算研究的最新进展

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摘要

There is an increasing worldwide demand for high energy density batteries. In recent years, rechargeable Li-ion batteries have become important power sources, and their performance gains are driving the adoption of electrical vehicles (EV) as viable alternatives to combustion engines. The exploration of new Li-ion battery materials is an important focus of materials scientists and computational physicists and chemists throughout the world. The practical applications of Li-ion batteries and emerging alternatives may not be limited to portable electronic devices and circumventing hurdles that include range anxiety and safety among others, to their widespread adoption in EV applications in the future requires new electrode materials and a fuller understanding of how the materials and the electrolyte chemistries behave. Since this field is advancing rapidly and attracting an increasing number of researchers, it is crucial to summarise the current progress and the key scientific challenges related to Li-ion batteries from theoretical point of view. Computational prediction of ideal compounds is the focus of several large consortia, and a leading methodology in designing materials and electrolytes optimized for function, including those for Li-ion batteries. In this Perspective, we review the key aspects of Li-ion batteries from theoretical perspectives: the working principles of Li-ion batteries, the cathodes, anodes, and electrolyte solutions that are the current state of the art, and future research directions for advanced Li-ion batteries based on computational materials and electrolyte design.
机译:全球对高能量密度电池的需求不断增长。近年来,可充电锂离子电池已成为重要的动力来源,其性能提升正推动电动汽车(EV)成为内燃机的可行替代品。新型锂离子电池材料的探索是全世界材料科学家以及计算物理学家和化学家的重要重点。锂离子电池和新兴替代产品的实际应用可能不仅限于便携式电子设备和规避障碍(包括范围焦虑和安全性),而且要在未来的EV应用中广泛采用,还需要新的电极材料以及对电池的更全面了解材料和电解质的化学性质如何。由于该领域正在迅速发展并吸引了越来越多的研究人员,因此从理论角度总结与锂离子电池相关的当前进展和关键的科学挑战至关重要。理想化合物的计算预测是几个大型协会的重点,也是设计针对功能优化的材料和电解质(包括锂离子电池)的领先方法。在此观点中,我们从理论角度回顾了锂离子电池的关键方面:锂离子电池的工作原理,当前最先进的正极,负极和电解质溶液,以及高级技术的未来研究方向锂离子电池基于计算材料和电解质设计。

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