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Atomistic dynamics of sulfur-deficient high-symmetry grain boundaries in molybdenum disulfide

机译:原子论的动态sulfur-deficient在钼high-symmetry晶界二硫化

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As a common type of structural defect, grain boundaries (GBs) play an important role in tailoring the physical and chemical properties of bulk crystals and their two-dimensional (2D) counterparts such as graphene and molybdenum disulfide (MoS2). In this study, we explore the atomic structures and dynamics of three kinds of high-symmetry GBs (alpha, beta and gamma) in monolayer MoS2. Atomic-resolution transmission electron microscopy (TEM) is used to characterize their formation and evolutionary dynamics, and atomistic simulation based analysis explains the size distribution of alpha-type GBs observed under TEM and the inter-GB interaction, revealing the stabilization mechanism of GBs by pre-existing sulfur vacancies. The results elucidate the correlation between the observed GB dynamics and the migration of sulfur atoms across GBs via a vacancy-mediated mechanism, offering a new perspective for GB engineering in monolayer MoS2, which may be generalized to other transition metal dichalcogenides.
机译:作为一种常见的结构性缺陷,粮食边界(GBs)中扮演重要角色裁剪的物理和化学性质大部分晶体及其二维(2 d)石墨烯和钼等同行二硫(监理)。原子结构和动力学三种high-symmetry GBs(α,β和γ)单层二硫化钼。电子显微镜(TEM)是用来描述他们的形成和演化动力学,基于原子论的模拟分析解释了alpha-type GBs的大小分布TEM和inter-GB互动下,露出GBs的稳定机制预先存在的硫空缺。阐明之间的相关性观察GB动力学和硫原子的迁移通过vacancy-mediated GBs机制,提供在单层GB工程新视角二硫化钼,可以推广到其他过渡金属dichalcogenides。

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