‡Materials Department, University of California, Santa Barbara, California 93106-5050, United States.
Inorg Chem. 2015 May 4;54(9):4394-402. doi: 10.1021/acs.inorgchem.5b00188. Epub 2015 Apr 23.
We investigate electrochemical properties of Mg in layered and spinel intercalation compounds from first-principles using TiS2 as a model system. Our calculations predict that Mg(x)TiS2 in both the layered and spinel crystal structures exhibits sloping voltage profiles with steps at stoichiometric compositions due to Mg-vacancy ordering. Mg ions are predicted to occupy the octahedral sites in both layered and spinel TiS2 with diffusion mediated by hops between octahedral sites that pass through adjacent tetrahedral sites. Predicted migration barriers are substantially higher than typical Li-migration barriers in intercalation compounds. The migration barriers are shown to be very sensitive to lattice parameters of the host crystal structure. We also discuss the possible role of rehybridization between the transition metal and the anion in affecting migration barriers.
我们使用 TiS2 作为模型体系,从第一性原理出发研究了层状和尖晶石插层化合物中镁的电化学性质。我们的计算预测,在层状和尖晶石晶体结构中,Mg(x)TiS2 都表现出由于 Mg 空位有序化而出现倾斜电压分布的台阶。Mg 离子被预测占据层状和尖晶石 TiS2 中的八面体位置,通过穿过相邻四面体位置的八面体位置跳跃来实现扩散。预测的迁移势垒远高于插层化合物中典型的 Li 迁移势垒。势垒对主体晶体结构的晶格参数非常敏感。我们还讨论了过渡金属和阴离子之间的重新杂化对影响迁移势垒的可能作用。