Xing Yingying, Cao Chihao, Huang Zhong, Huang Liang, Zhang Haijun, Jia Quanli
The State Key Laboratory of Refractories and Metallurgy, School of Materials and Metallurgy, Wuhan University of Science and Technology, Wuhan 430081, China.
Henan Key Laboratory of High Temperature Functional Ceramics, Zhengzhou University, Zhengzhou 450052, China.
Phys Chem Chem Phys. 2024 Feb 22;26(8):7072-7082. doi: 10.1039/d3cp05164a.
The promotion of lithium-ion batteries and sodium-ion batteries is limited by the deficiency of suitable anode materials with desired electrochemical properties. In this work, the models of 2D single-layer SiP are constructed to explore its potential as an anode material for LIBs and SIBs using density functional theory (DFT). The diffusion of Li in bulk SiP is anisotropic. There is a low diffusion energy barrier of 0.28 eV along the -axis. The low surface exfoliation energy suggests that there is a high probability of preparing 2D single-layer SiP experimentally. Its structure stability is verified by molecular dynamics (AIMD) simulations at 300 K and 400 K. The intercalation and diffusion behaviors of Li/Na on 2D single-layer SiP indicate that Li/Na tends to diffuse along the -axis direction of 2D single-layer SiP. The diffusion energy barrier of Li/Na on 2D single-layer SiP is lower compared to that of bulk SiP. The conductivity of 2D single-layer SiP is improved after lithiation due to the upshift of Fermi levels. 2D single-layer SiP has a lower average open circuit voltage (1.50 V for LIBs and 1.08 V for SIBs) and a high theoretical capacity (520 mA h g). Hence, 2D single-layer SiP can be an ideal anode material for LIBs and SIBs.
锂离子电池和钠离子电池的推广受到具有所需电化学性能的合适负极材料不足的限制。在这项工作中,构建了二维单层SiP模型,以使用密度泛函理论(DFT)探索其作为锂离子电池和钠离子电池负极材料的潜力。锂在块状SiP中的扩散是各向异性的。沿z轴存在0.28 eV的低扩散能垒。低表面剥离能表明通过实验制备二维单层SiP具有很高的可能性。通过在300 K和400 K下的分子动力学(AIMD)模拟验证了其结构稳定性。Li/Na在二维单层SiP上的嵌入和扩散行为表明,Li/Na倾向于沿二维单层SiP的z轴方向扩散。与块状SiP相比,Li/Na在二维单层SiP上的扩散能垒更低。锂化后,由于费米能级上移,二维单层SiP的电导率得到提高。二维单层SiP具有较低的平均开路电压(锂离子电池为1.50 V,钠离子电池为1.08 V)和较高的理论容量(520 mA h g)。因此,二维单层SiP可以成为锂离子电池和钠离子电池的理想负极材料。