材料科学
锂(药物)
异质结
离子
工程物理
光电子学
纳米技术
复合材料
有机化学
工程类
医学
内分泌学
化学
作者
Wanjun Yan,Xin Tang,Yutao Liu,Tinghong Gao,Fuhong Ren,Nan Wang,Guiyang Liu
标识
DOI:10.1016/j.jsamd.2025.100946
摘要
The integration of two-dimensional (2D) materials into heterostructures provides an effective approach to design advanced electronic devices by synergistically combining the advantages of constituent monolayers. In this study, we employ density functional theory (DFT) to systematically evaluate three SiC-based heterostructures (SiC/graphene, SiC/BN, and SiC/MoS 2 ) as high-performance anode candidates for lithium-ion batteries. To assess the potential of these SiC-based heterostructures, their geometry structures, electronic structures, Li adsorption and migration properties, and electrochemical properties were investigated. Results illustrate that these heterostructures exhibit enhanced mechanical robustness, with Young’s modulus surpassing those of individual monolayers. Ab initio molecular dynamics (AIMD) simulations reveal that these SiC-based heterostructures can maintain good structural stability during lithiation at 300 K. With the introduction of other 2D anode materials, the lithiated SiC-based heterostructures exhibit enhanced electrical conductivity, high theoretical specific capacity, and acceptable diffusion barriers, which are crucial for maintaining high multiplicity performance of lithium-ion batteries. These findings indicate the remarkable potential of SiC-based heterostructures as ideal anode materials for lithium-ion batteries.
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