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Atomic-Scale Clarification of Structural Transition of MoS2 upon Sodium Intercalation

机译:嵌入钠后MoS2的结构转变的原子尺度澄清

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Two-dimensional (2D) transition-metal dichalcogenides hold enormous potential for applications in electronic and optoelectronic devices. Their distinctive electronic and chemical properties are closely related to the structure and intercalation chemistry. Herein, the controversial phase transition from semiconductive 2H to metallic 1T phase and occupancy of the intercalated sodium (Na) upon electrochemical Na intercalation into MoS2 are clarified at the atomic scale by aberration-corrected scanning transmission electron microscope. In addition, a series of other complicated phase transitions along with lattice distortion, structural modulation, and even irreversible structural decomposition are recognized in MoS2 depending on the content of Na ion intercalation. It is shown that x = 1.5 in NaxMoS2 is a critical point for the reversibility of the structural evolution. Our findings enrich the understanding of the phase transitions and intercalation chemistry of the MoS2 and shed light on future material design and applications.
机译:二维(2D)过渡金属二卤化物在电子和光电设备中具有巨大的潜力。它们独特的电子和化学性质与结构和嵌入化学密切相关。在此,通过像差校正的扫描透射电子显微镜在原子尺度上阐明了从半导体2H到金属1T相的有争议的相变以及电化学将Na插入MoS2中时插层钠(Na)的占有率。此外,根据Na离子插层的含量,在MoS2中还可以识别出一系列其他复杂的相变以及晶格畸变,结构调制,甚至是不可逆的结构分解。结果表明,NaxMoS2中的x = 1.5是结构演化可逆性的关键点。我们的发现丰富了对MoS2的相变和插层化学的理解,并为将来的材料设计和应用提供了启示。

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