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一种新型二维TiClO作为镁离子电池的高性能阳极材料:第一性原理研究。

A Novel Two-Dimensional TiClO as a High-Performance Anode Material for Mg-Ion Batteries: A First-Principles Study.

作者信息

Zhang Songcheng, Liu Chunsheng

机构信息

College of Electronic and Optical Engineering, Nanjing University of Posts and Telecommunications, Nanjing 210023, China.

出版信息

Materials (Basel). 2023 May 21;16(10):3876. doi: 10.3390/ma16103876.

Abstract

Searching for efficient electrode materials with excellent electrochemical performance is of great significance to the development of magnesium-ion batteries (MIBs). Two-dimensional Ti-based materials are appealing for use in MIBs due to their high cycling capability. On the basis of density functional theory (DFT) calculations, we comprehensively investigate a novel two-dimensional Ti-based material, namely, TiClO monolayer, as a promising anode for MIBs. Monolayer TiClO can be exfoliated from its experimentally known bulk crystal with a moderate cleavage energy of 1.13 J/m. It exhibits intrinsically metallic properties with good energetical, dynamical, mechanical, and thermal stabilities. Remarkably, TiClO monolayer possesses an ultra-high storage capacity (1079 mA h g), a low energy barrier (0.41-0.68 eV), and a suitable average open-circuit voltage (0.96 V). The lattice expansion for the TiClO monolayer is slight (<4.3%) during the Mg-ion intercalation. Moreover, bilayer and trilayer TiClO can considerably enhance the Mg binding strength and maintain the quasi-one-dimensional diffusion feature compared with monolayer TiClO. All these properties indicate that TiClO monolayers can be utilized as high-performance anodes for MIBs.

摘要

寻找具有优异电化学性能的高效电极材料对镁离子电池(MIBs)的发展具有重要意义。二维钛基材料因其高循环性能而在MIBs中具有吸引力。基于密度泛函理论(DFT)计算,我们全面研究了一种新型二维钛基材料,即TiClO单层,作为MIBs有前景的负极材料。TiClO单层可以从其已知的块状晶体中剥离出来,其解离能适中,为1.13 J/m 。它具有本征金属特性,具有良好的能量、动力学、机械和热稳定性。值得注意的是,TiClO单层具有超高的存储容量(1079 mA h g)、低能垒(0.41 - 0.68 eV)和合适的平均开路电压(0.96 V)。在镁离子嵌入过程中,TiClO单层的晶格膨胀很小(<4.3%)。此外,与TiClO单层相比,双层和三层TiClO可以显著提高镁的结合强度并保持准一维扩散特征。所有这些特性表明,TiClO单层可作为MIBs的高性能负极材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/35ef/10221357/cb48055b6a37/materials-16-03876-g001.jpg

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