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Recent progress in lithium-ion and lithium metal batteries

机译:锂离子和锂金属电池的研究进展

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摘要

Moving towards carbon-free energy and global commercialization of electric vehicles stimulated extensive development in the field of lithium-ion batteries (LIBs), and to date, many scientific and technological advances have been achieved. The number of research works devoted to developing high-capacity and stable materials for lithium ion and lithium metal batteries (LMBs) is constantly rising. This review covers the main progress in the development of LIBs and LMBs based on research works published in 2021. One of the main goals in the recent publications is to solve the problem of instability of layered nickel-rich lithium- nickel-cobalt-manganese oxides (Ni-rich NMC) cathodes, as well as silicon anodes. Improving the stability of NMC cathodes can be achieved by doping them with cations as well as by coating the oxides' surfaces with protective layers (organic polymers and inorganic materials). The most effective strategies for dampening volumetric changes in silicon anodes include using porous silicon structures, obtaining composites with carbon, coating silicon-containing particles with inorganic or polymeric materials, and replacing standard binder materials. Much work has been devoted to suppressing dendrite formation in LMBs by forming stable coating layers on the surface of lithium metal, preparing composite anodes and alloys, and changing the composition of electrolytes. At the same time, in the field of electrolyte development, many research works have been devoted to the search for new hybrid polymer electrolytes containing lithium-conducting inorganic materials.
机译:向无碳能源迈进和电动汽车的全球商业化刺激了锂离子电池(LIB)领域的广泛发展,迄今为止,已经取得了许多科学和技术进步。致力于开发锂离子和锂金属电池(LMB)的高容量和稳定材料的研究工作数量不断增加。本文基于2021年发表的研究成果,综述了LIBs和LMBs开发的主要进展。最近出版物的主要目标之一是解决层状富镍锂镍钴锰氧化物(富镍NMC)阴极以及硅阳极的不稳定性问题。通过用阳离子掺杂它们以及在氧化物表面涂覆保护层(有机聚合物和无机材料),可以提高NMC阴极的稳定性。抑制硅阳极体积变化的最有效策略包括使用多孔硅结构,获得碳复合材料,用无机或聚合物材料涂覆含硅颗粒,以及替代标准粘合剂材料。通过在锂金属表面形成稳定的涂层、制备复合阳极和合金以及改变电解质的组成来抑制LMBs中枝晶的形成,已经投入了大量工作。同时,在电解质开发领域,许多研究工作都致力于寻找含有锂导电无机材料的新型杂化聚合物电解质。

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