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Oxide-mediated recovery of field-effect mobility in plasma-treated MoS2

机译:等离子体处理的MoS2中氧化物介导的场效应迁移率的恢复

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Precise tunability of electronic properties of two-dimensional (2D) nanomaterials is a key goal of current research in this field of materials science. Chemical modification of layered transition metal dichalcogenides leads to the creation of heterostructures of low-dimensional variants of these materials. In particular, the effect of oxygen-containing plasma treatment on molybdenum disulfide (MoS2) has long been thought to be detrimental to the electrical performance of the material. We show that the mobility and conductivity of MoS2 can be precisely controlled and improved by systematic exposure to oxygen/argon plasma and characterize the material using advanced spectroscopy and microscopy. Through complementary theoretical modeling, which confirms conductivity enhancement, we infer the role of a transient 2D substoichiometric phase of molybdenum trioxide (2D-MoO x ) in modulating the electronic behavior of the material. Deduction of the beneficial role of MoO x will serve to open the field to new approaches with regard to the tunability of 2D semiconductors by their low-dimensional oxides in nano-modified heterostructures.
机译:二维(2D)纳米材料的电子特性的精确可调性是材料科学领域当前研究的关键目标。层状过渡金属二卤化物的化学改性导致这些材料的低维变体形成异质结构。特别是,长期以来,含氧等离子体处理对二硫化钼(MoS 2 )的影响一直被认为不利于材料的电性能。我们表明,通过系统地暴露于氧/氩等离子体,可以精确地控制和改善MoS 2 的迁移率和电导率,并使用先进的光谱学和显微镜对材料进行表征。通过补充理论模型,证实了电导率的提高,我们推断出瞬态二维亚化学计量的三氧化钼(2D-MoO x )在调节材料的电子行为中的作用。 MoO x 的有益作用的推论将为二维半导体在纳米改性异质结构中的低维氧化物的可调谐性提供新的领域。

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