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非晶态碳化硅复合负极材料:基于第一性原理分子动力学研究锂和钠在其结构中的行为

Amorphous SiC composite anode materials: ab initio molecular dynamics for behaviors of Li and Na in the framework.

作者信息

Hur Jaewoong

机构信息

Center for Multidimensional Carbon Materials (CMCM), Institute for Basic Science (IBS), Ulsan, 44919, Republic of Korea.

出版信息

Phys Chem Chem Phys. 2021 Mar 7;23(9):5571-5577. doi: 10.1039/d0cp05934j. Epub 2021 Mar 2.

Abstract

Although amorphous Si/C composite anode materials with various types of nanostructures Si/C materials have been experimentally proposed for rechargeable ion batteries for their structural durability, the atomistic mechanism primarily suggesting Li and Na monovalent ion intercalation into an amorphous Si/C composite matrix has not theoretically been understood to explore the thermodynamic and kinetic features of the a-Si/C composite phase regarding the effects on the carbon addition to an amorphous Si matrix. In this work, systematic ab initio molecular dynamics calculations (AIMDs) were conducted to identify electrochemical intercalation reactions involved in nanostructure evolutions, which correspond to favorable ion-intercalated formations, volume expansions, pair correlations, charge transfers, and diffusion behaviors of metals in a-MSiC (M: Li and Na) alloys with increasing x contents of atomic concentrations. AIMDs using the a-SiC composite phase might allow one to have an atomic-level understanding of the composite phase and further insightful comprehension of any implementations such as the controlled ratio of the SiC composite and multivalent ions inserted into the framework.

摘要

尽管具有各种纳米结构的非晶硅/碳复合负极材料(Si/C材料)因其结构耐久性已被实验性地提出用于可充电离子电池,但关于锂和钠单价离子嵌入非晶硅/碳复合基体的原子机制,从理论上尚未被理解,以探索非晶硅/碳复合相的热力学和动力学特征,以及碳添加到非晶硅基体中的影响。在这项工作中,进行了系统的从头算分子动力学计算(AIMD),以识别与纳米结构演化相关的电化学嵌入反应,这些反应对应于有利的离子嵌入形成、体积膨胀、对关联、电荷转移以及随着a-MSiC(M:Li和Na)合金中原子浓度x含量增加时金属的扩散行为。使用非晶硅/碳复合相的AIMD可能使人们对复合相有原子水平的理解,并进一步深入理解任何实施方式,例如非晶硅/碳复合材料的可控比例以及插入框架中的多价离子。

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