Ti-decorated SiC2 as a high-performance anode material for Li-ion batteries: A DFT-D2 approach

材料科学 阳极 离子 化学工程 工程物理 纳米技术 物理化学 电极 有机化学 化学 工程类
作者
Samira Nikmanesh,Seshasai Srinivasan,R. Safaiee
出处
期刊:Materials Today Physics [Elsevier BV]
卷期号:54: 101734-101734 被引量:1
标识
DOI:10.1016/j.mtphys.2025.101734
摘要

This study employs dispersion-corrected DFT-D2 calculations to investigate Li adsorption on pristine and Ti-decorated SiC 2 , evaluating their potential as anode materials for Li-ion batteries. Key analyses, including adsorption energy , density of states (DOS), Bader charge, diffusion barrier , and open-circuit voltage (OCV), reveal that the incorporation of titanium (Ti) into SiC 2 significantly enhances the electrochemical performance , stability, and lithium atom diffusion characteristics of the material. Ti increases the adsorption energy, Eads, from −1.422 eV for SiC 2 to −1.641 eV for Ti-decorated SiC 2 , strengthening the bond between lithium ions and the substrate. This stronger interaction improves capacity retention and cycling stability by reducing lithium desorption during cycling. While this increase in adsorption energy may slightly impede lithium diffusion, it contributes to greater structural stability and durability under high-rate charging and discharging conditions. Additionally, OCV is enhanced from 0.340 V in SiC 2 to 0.392 V in Ti-decorated SiC 2 , improving the overall energy output. The lattice constants exhibit a minimal change of only 0.21 %, indicating that lithium intercalation and deintercalation during battery charge and discharge cycles have an insignificant impact on volume variation. With a capacity of 965.25 mAh/g, Ti-decorated SiC 2 achieves a more favorable balance of stability, rate capability, and energy efficiency compared to undoped SiC 2 , making it a promising material for practical, long-term applications in lithium-ion batteries. • Ti decoration enhances Li adsorption on SiC 2 , increasing binding energy to −1.641 eV. • Stronger Li interaction with Ti-SiC 2 improves electrochemical stability and performance. • Ti-decorated SiC 2 exhibits higher OCV and capacity, enabling high energy density storage. • DFT-D2 analysis reveals the lower Li diffusion barrier, facilitating fast ion transport. • Enhanced stability and conductivity make Ti-SiC 2 a promising anode for Li-ion batteries.
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