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First-principles study of van der Waals interactions and lattice mismatch at MoS2/metal interfaces

机译:MoS2 /金属界面上范德华相互作用和晶格失配的第一性原理研究

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We explore the adsorption of MoS2 on a range of metal substrates by means of first-principles density functional theory calculations. Including van der Waals forces in the density functional is essential to capture the interaction between MoS2 and a metal surface, and obtain reliable interface potential steps and Schottky barriers. Special care is taken to construct interface structures that have a mismatch between the MoS2 and the metal lattices of <1%. MoS2 is chemisorbed on the early transitionmetal Ti, which leads to a strong perturbation of its (electronic) structure and a pinning of the Fermi level 0.54 eV below the MoS2 conduction band due to interface states. MoS2 is physisorbed on Au, where the bonding hardly perturbs the electronic structure. The bonding of MoS2 on other metals lies between these two extreme cases, with interface interactions for the late 3d transition metals Co, Ni, Cu and the simple metal Mg that are somewhat stronger than for the late 4d/5d transition metals Pd, Ag, Pt and the simple metal Al. Even a weak interaction, such as in the case of Al, gives interface states, however, with energies inside the MoS2 band gap, which pin the Fermi level below the conduction band.
机译:我们通过第一原理密度泛函理论计算来探索MoS2在一系列金属基底上的吸附。在密度泛函中包括范德华力对于捕获MoS2和金属表面之间的相互作用,获得可靠的界面电势台阶和肖特基势垒至关重要。要特别注意构造在MoS2和金属晶格之间的不匹配度小于1%的界面结构。 MoS2被化学吸附在早期过渡金属Ti上,这会导致其(电子)结构发生强烈扰动,并且由于界面态而使Mos2导带以下的费米能级固定0.54 eV。 MoS2物理吸附在Au上,在那里键合几乎不会干扰电子结构。 MoS2在其他金属上的键合介于这两种极端情况之间,晚期3d过渡金属Co,Ni,Cu和简单金属Mg的界面相互作用比晚期4d / 5d过渡金属Pd,Ag,铂和简单的金属铝。但是,即使是微弱的相互作用(例如在Al的情况下),也会在MoS2带隙内将能量固定在导带下方,从而使界面态产生费米能级。

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