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Research on the Phase Transformation of Silicon Anode Material for Lithium Ion Batteries by Constant-Capacity Discharging

机译:恒容量放电用于锂离子电池硅负极材料的相变研究

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Silicon is the most attractive anode candidate for lithium ion batteries for its high theoretical capacity. However, it is difficult to be applied as anode material of lithium ion batteries for its poor cyclability and high irreversible capacity caused by structure collapse during the course of lithium insertion-extraction. Considering finding an efficient way to alleviate the crystal transformation during lithium insertion, the silicon anode with the highest theoretical capacity of all know non-lithium substances, was discharged by controlling its insertion capacity. The phase transformation during lithium ion insertion into silicon was investigated in detail. The lithiuminsertion phases produced by constant capacity processing consist of Li-Si binary crystals and amorphous host phase. A stable Li12Si7 phase was found under different discharge conditions. This LiSi binary phase formed by constant capacity showed high structure-reversibility during lithium insertion-extraction. The enhanced cyclability of silicon anode during constant-capacity discharging benefits from the mixture phases of silicon amorphous and crystal Li-Si alloy.
机译:硅因其高理论容量而成为锂离子电池最有吸引力的阳极候选材料。然而,由于其在锂插入-拔出过程中的循环性差和由结构塌陷引起的高不可逆容量,难以用作锂离子电池的负极材料。考虑到找到一种减轻锂插入过程中晶体转变的有效方法,通过控制其插入容量来排出理论上容量最高的所有已知非锂物质中的硅阳极。详细研究了锂离子插入硅期间的相变。通过恒定容量处理产生的锂插入相由Li-Si二元晶体和非晶主体相组成。在不同的放电条件下发现了稳定的Li12Si7相。由恒定容量形成的该LiSi二元相在锂插入-提取过程中显示出高的结构可逆性。恒定容量放电期间增强的硅阳极循环能力得益于非晶硅和晶体Li-Si合金的混合相。

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