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Improvement of irreversible behavior of SiO anodes for lithium ion batteries by a solid state reaction at high temperature

机译:通过高温下的固态反应改善锂离子电池用SiO阳极的不可逆行为

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Herein, we describe a new simple method to improve the irreversible performance of a SiO anode during the initial cycle. The solid state-reacted SiO material was synthesized from bare SiO and lithium powders (three samples with weight ratios of 7:1, 8:1, and 9:1 were prepared) using a heat treatment process at 600 degrees C. Irreversible phases such as lithium silicates (Li4SiO4 and Li2SiO3) and Li2O were formed upon the solid state reaction with SiO. Electrochemical tests using half-cells were performed to confirm the effects of the solid state-reacted SiO material. The initial Coulombic efficiencies of the three samples were 82.12% (7:1), 79.81% (8:1), and 78.95% (9:1), which were far higher than that of a bare SiO cell (58.52%). Furthermore, the electrochemical performance of a full cell using a 7:1 wt% SiO anode and a lithium cobalt oxide cathode was evaluated. The full cell exhibited an initial Coulombic efficiency of 93.62% and a capacity retention of 74.70% after 15 cycles, which were also far higher than those of a bare SiO cell (66.4% and 55.72%, respectively). A comparison of the solid state-reacted and bare SiO electrodes demonstrated that the pre-formed irreversible phases prevented the consumption of lithium ions during the 1st cycle. (C) 2016 Elsevier B.V. All rights reserved.
机译:在本文中,我们描述了一种新的简单方法来改善SiO阳极在初始循环过程中的不可逆性能。固态反应的SiO材料是由裸SiO和锂粉(制备了三个重量比为7:1、8:1和9:1的样品)使用600摄氏度的热处理工艺合成的。由于与SiO发生固相反应,形成了硅酸锂(Li4SiO4和Li2SiO3)和Li2O。使用半电池进行了电化学测试,以确认固态反应SiO材料的效果。这三个样品的初始库仑效率为82.12%(7:1),79.81%(8:1)和78.95%(9:1),远高于裸SiO电池(58.52%)。此外,评价了使用7:1重量%的SiO阳极和锂钴氧化物阴极的全电池的电化学性能。完整的电池在15个循环后的初始库仑效率为93.62%,容量保持率为74.70%,也远高于裸SiO电池(分别为66.4%和55.72%)。固态反应的电极和裸露的SiO电极的比较表明,预先形成的不可逆相可防止锂离子在第一个循环中消耗。 (C)2016 Elsevier B.V.保留所有权利。

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