Department of Materials Science & Engineering, City University of Hong Kong, Hong Kong, China.
Nanoscale. 2018 Feb 15;10(7):3385-3392. doi: 10.1039/c7nr07649e.
MXenes are attracting much attention as electrode materials due to their excellent energy storage properties and electrical conductivity, and the energy storage capacities were found to strongly depend on the surface terminal groups. Here S-functionalized TiC as a representative MXene material is designed. Our density functional theory (DFT) calculations are performed to investigate the geometric and electronic properties, dynamic stability, and Na storage capability of TiC, TiCO and TiCS systems. The TiCS monolayer is proved to show metallic behavior and has a stable structure, and meanwhile it also exhibits a low diffusion barrier and high storage capacity (up to TiCSNa stoichiometry) for Na ion batteries (NIBs). The superior properties such as good electrical conductivity, fast charge-discharge rates, low open circuit voltage (OCV), and high theoretical Na storage capacity, make the TiCS monolayer a promising anode material for NIBs compared to the TiCO monolayer. More importantly, similar to the TiCS monolayer, other MXenes with a high charge density difference and suitable lattice constant can be formed, and thus the energy storage properties are worth further study. This finding will be useful to the design of anode materials for NIBs.
MXenes 由于其优异的储能性能和导电性而备受关注,其储能能力被发现强烈依赖于表面端基。本文以 S 功能化 TiC 作为代表性的 MXene 材料进行设计。通过密度泛函理论(DFT)计算研究了 TiC、TiCO 和 TiCS 体系的几何和电子性质、动力学稳定性和 Na 存储能力。证明 TiCS 单层具有金属行为和稳定的结构,同时还表现出低扩散势垒和高储钠能力(高达 TiCSNa 化学计量比),对于钠离子电池(NIBs)具有优异的性能,如良好的导电性、快速充放电速率、低开路电压(OCV)和高理论储钠能力,与 TiCO 单层相比,TiCS 单层是 NIBs 有前途的阳极材料。更重要的是,类似于 TiCS 单层,可以形成具有高电荷密度差和合适晶格常数的其他 MXenes,因此储能性能值得进一步研究。这一发现将有助于设计钠离子电池的阳极材料。