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Adsorption and diffusion of lithium on heteroatom-doped monolayer molybdenum disulfide

机译:锂在杂原子掺杂单层二硫化钼上的吸附和扩散

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n this work, heteroatom doping in monolayer MoS2 by substitution of S with nonmetal elements (N, P, As, F, Cl, and I) and substitution of Mo with metal elements (Fe, Co, Ni, Cu, and Zn) was investigated using density functional theory. The adsorption and diffusion of Li on the heteroatom-doped MoS2 monolayer were also studied. Results showed that heteroatom doping can be realized by controlling the synthesis condition, and can enhance the adsorption of Li on monolayer MoS2 , especially for p-type doped monolayers. The diffusion energy barriers were slightly decreased as Li diffused towards the doping site, whereas they were increased for the diffusion around the doping site. The maximum values of the diffusion energy barriers were 0.82, 0.62, and 0.72 eV for Ni, Cu, and Cu dopants, respectively, with others around 0.25 eV. The diffusion was not affected by the doping for sites far from the doping position. Thus, heteroatom-doped monolayer MoS2 can be used as an anode material for lithium ion batteries.
机译:在这项工作中,通过用非金属元素(N,P,As,F,Cl和I取代S)和用金属元素(Fe,Co,Ni,Cu和Zn取代Mo)在单层MoS2中进行杂原子掺杂是使用密度泛函理论进行了研究。还研究了Li在杂原子掺杂的MoS2单层上的吸附和扩散。结果表明,杂原子掺杂可以通过控制合成条件来实现,并且可以增强Li在单层MoS2上的吸附,特别是对于p型掺杂单层。当Li向掺杂位点扩散时,扩散能垒略有降低,而随着掺杂位点周围的扩散而增加。对于Ni,Cu和Cu掺杂剂,扩散能垒的最大值分别为0.82、0.62和0.72eV,其他的约为0.25eV。对于远离掺杂位置的部位的掺杂,扩散不受其影响。因此,杂原子掺杂的单层MoS 2可以用作锂离子电池的负极材料。

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