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Phase evolution of lithium intercalation dynamics in 2H-MoS2

机译:锂夹层阶段的动态演变在2 h-mos2

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Due to the easy intralayer gliding and weak interlayer van der Waals interaction in transition metal dichalcogenides (TMDs), ion (particularly Li+) intercalation has been used to modify and tune their atomic structures to obtain the desired optical, electronic and chemical properties for future optoelectronics and energy storage applications. A good understanding of the transformative structures during intercalation is critical. In this paper, we investigate the structural transformation dynamics of 2H-MoS2 using electrochemical Li+ intercalation for 2H-MoS2. The introduction of Li+ changes the local symmetry of the MoS2 in favor of the dT phase, clearly indicated by the appearance of Raman peaks of the dT phase. Further Li+ insertion causes the samples to become single-layer-like, characterized by the disappearance of the 32 cm-1 Raman peak. We also observe for the first time that the photoluminescence (PL) emission gradually redshifts with decreasing intensity, followed by eventual vanishing of the PL peak in the dT-MoS2 phase. By the nudged elastic band (NEB) calculations, we propose the 2H-1T-dT phase transition mechanism of MoS2 for Li+ intercalated samples. Our claims are supported by high resolution-transmission electron microscopy (HR-TEM). Our study deepens the understanding of the phase transition dynamics upon lithium intercalation, which is of great value to possible optoelectronic devices based on the phase engineering of TMDs. The new Li-stabilized dT-MoS2 phase does not possess inversion symmetry and may present a feasible way to achieve Weyl state tuning in a single material via phase engineering.
机译:由于容易intralayer滑翔和虚弱层间范德华相互作用过渡金属dichalcogenides (tmd),离子(尤其是李+)夹层被用来修改和优化它们的原子结构来获得所需的光学、电子和化学未来光电性质和能量存储应用程序。变革在夹层结构至关重要的。2 h-mos2的结构性转变动力学使用电化学李+夹层2 h-mos2。局部对称的二硫化钼的dT阶段,注明的外观拉曼峰的dT阶段。插入导致样品single-layer-like,的特点失踪的32 cm - 1拉曼峰。第一次观察光致发光(PL)排放逐渐红移,强度下降,紧随其后最终消失在dT-MoS2 PL峰阶段。计算,我们建议2 h-1t-dt阶段转变机制的二硫化钼李+插入样本。分辨透射电子显微镜(HR-TEM)。相变动力学锂夹层,这是很有价值的可能基于光电设备tmd的工程阶段。dT-MoS2阶段没有镜面对称新形式实现,可能提供一个可行的方法通过阶段状态调整在一个单一的材料工程。

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