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用于锂离子电池的具有增强初始库仑效率的溶胀控制双层SiO/MgSiO/SiO复合材料

Swelling-Controlled Double-Layered SiO/MgSiO/SiO Composite with Enhanced Initial Coulombic Efficiency for Lithium-Ion Battery.

作者信息

Raza Asif, Jung Jae Yup, Lee Cheol-Ho, Kim Byung Gon, Choi Jeong-Hee, Park Min-Sik, Lee Sang-Min

机构信息

Electro-Functionality Materials Engineering, University of Science and Technology (UST), 217, Gajeong-ro, Yuseong-gu, Daejeon 34113, Republic of Korea.

Next Generation Battery Research Center, Korea Electrotechnology Research Institute, 12 Bulmosan-ro 10 beon-gil, Seongsan-gu, Changwon 51543, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2021 Feb 17;13(6):7161-7170. doi: 10.1021/acsami.0c19975. Epub 2021 Feb 4.

Abstract

Si-based anode materials are considered as potential materials for high-energy lithium-ion batteries (LIBs) with the advantages of high specific capacities and low operating voltages. However, significant initial capacity loss and large volume variations during cycles are the primary restrictions for the practical application of Si-based anodes. Herein, we propose an affordable and scalable synthesis of double-layered SiO/MgSiO/SiO composites through the magnesiothermic reduction of micro-sized SiO with Mg metal powder at 750 °C for 2 h. The distinctive morphology and microstructure of the double-layered SiO/MgSiO/SiO composite are beneficial as they remarkably improve the reversibility in the first cycle and completely suppress the volume variations during cycling. In our material design, the outermost layer with a highly porous SiO structure provides abundant active sites by securing a pathway for efficient access to electrons and electrolytes. The inner layer of MgSiO can constrain the large volume expansion to increase the initial Coulombic efficiency (ICE). Owing to these promising structural features, the composite prepared with a 2:1 molar ratio of SiO to Mg exhibited initial charge and discharge capacities of 1826 and 1381 mA h g, respectively, with an ICE of 75.6%. Moreover, it showed a stable cycle performance, maintaining high capacity retention of up to >86.0% even after 300 cycles. The proposed approach provides practical insight into the mass production of advanced anode materials for high-energy LIBs.

摘要

硅基负极材料因其高比容量和低工作电压的优点,被认为是高能锂离子电池(LIBs)的潜在材料。然而,显著的初始容量损失和循环过程中的大体积变化是硅基负极实际应用的主要限制因素。在此,我们提出了一种经济且可扩展的方法,通过在750℃下用镁金属粉末对微米级SiO进行镁热还原2小时,合成双层SiO/MgSiO/SiO复合材料。双层SiO/MgSiO/SiO复合材料独特的形貌和微观结构具有重要意义,因为它们显著提高了首次循环的可逆性,并完全抑制了循环过程中的体积变化。在我们的材料设计中,具有高度多孔SiO结构的最外层通过确保电子和电解质有效传输的通道,提供了丰富的活性位点。MgSiO内层可以限制大体积膨胀,从而提高初始库仑效率(ICE)。由于这些有前景的结构特征,以SiO与Mg摩尔比为2:1制备的复合材料,首次充电和放电容量分别为1826和1381 mA h g,初始库仑效率为75.6%。此外,它还表现出稳定的循环性能,即使在300次循环后仍保持高达>86.0%的高容量保持率。所提出的方法为高能LIBs先进负极材料的大规模生产提供了实际见解。

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