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Lithium-ion conducting oxide single crystal as solid electrolyte for advanced lithium battery application

机译:锂离子导电氧化物单晶作为固体电解质的高级锂电池应用

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摘要

Today, all-solid-state secondary lithium-ion batteries have attracted attention in research and development all over the world as a next-generation energy storage device. A key material for the all-solid-state lithium batteries is inorganic solid electrolyte, including oxide and sulfide materials. Among the oxide electrolytes, garnet-type oxide exhibits the highest lithium-ion conductivity and a wide electrochemical potential window. However, they have major problems for practical realization. One of the major problems is an internal short-circuit in charging and discharging. In the polycrystalline garnet-type oxide electrolyte, dendrites of lithium metal easily grow through the void or impurity in grain boundaries of the sintered body, which causes serious internal short-circuits in the battery system. To solve these problems, we present an all-solid-state battery system using a single-crystal oxide electrolyte. We are the first to successfully grow centimeter-sized single crystals of garnet-type by the floating zone method. The single-crystal solid electrolyte exhibits an extremely high lithium-ion conductivity of 10−3 S cm−1 at 298 K. The garnet-type single-crystal electrolyte has an advantageous bulk nature to realize the bulk conductivity without grain boundaries such as in a sintered polycrystalline body, and will be a game-changing technology for achieving highly safe advanced battery systems.
机译:如今,作为下一代储能设备,全固态二次锂离子电池已在全球范围内引起了研究与开发的关注。用于全固态锂电池的关键材料是无机固体电解质,包括氧化物和硫化物材料。在氧化物电解质中,石榴石型氧化物表现出最高的锂离子传导性和宽的电化学电势窗口。但是,它们对于实际实现存在重大问题。主要问题之一是充电和放电中的内部短路。在多晶石榴石型氧化物电解质中,锂金属的树枝状晶体容易通过烧结体的晶界中的空隙或杂质生长,这导致电池系统中的严重内部短路。为了解决这些问题,我们提出了一种使用单晶氧化物电解质的全固态电池系统。我们是第一个通过浮区法成功生长出厘米级石榴石型单晶的公司。该单晶固体电解质在298 K时具有极高的10 -3 S cm -1 锂离子电导率。有利的整体性质,以实现在没有晶粒边界的情况下(例如在烧结的多晶体中)的整体导电性,并且将成为改变游戏规则的技术,以实现高度安全的高级电池系统。

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