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Stacking sequence determines Raman intensities of observed interlayer shear modes in 2D layered materials – A general bond polarizability model

机译:堆叠顺序决定了二维层状材料中观察到的层间剪切模式的拉曼强度–普通键极化率模型

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摘要

2D layered materials have recently attracted tremendous interest due to their fascinating properties and potential applications. The interlayer interactions are much weaker than the intralayer bonds, allowing the as-synthesized materials to exhibit different stacking sequences, leading to different physical properties. Here, we show that regardless of the space group of the 2D materials, the Raman frequencies of the interlayer shear modes observed under the typical configuration blue shift for AB stacked materials, and red shift for ABC stacked materials, as the number of layers increases. Our predictions are made using an intuitive bond polarizability model which shows that stacking sequence plays a key role in determining which interlayer shear modes lead to the largest change in polarizability (Raman intensity); the modes with the largest Raman intensity determining the frequency trends. We present direct evidence for these conclusions by studying the Raman modes in few layer graphene, MoS2, MoSe2, WSe2 and Bi2Se3, using both first principles calculations and Raman spectroscopy. This study sheds light on the influence of stacking sequence on the Raman intensities of intrinsic interlayer modes in 2D layered materials in general, and leads to a practical way of identifying the stacking sequence in these materials.
机译:2D层状材料由于其令人着迷的特性和潜在的应用,最近引起了极大的兴趣。层间相互作用比层间键弱得多,从而使合成后的材料表现出不同的堆积顺序,从而导致不同的物理性能。在这里,我们表明,不管2D材料的空间组如何,随着层数的增加,在典型配置下观察到的层间剪切模式的拉曼频率在AB堆叠材料下为蓝移,而ABC堆叠材料为红移。我们的预测是使用直观的键极化率模型进行的,该模型表明堆叠顺序在确定哪种层间剪切模式导致极化率(拉曼强度)变化最大方面起着关键作用。拉曼强度最大的模式决定了频率趋势。我们通过使用第一原理计算和拉曼光谱研究几层石墨烯,MoS2,MoSe2,WSe2和Bi2Se3中的拉曼模式,为这些结论提供了直接的证据。这项研究通常揭示了堆叠顺序对二维层状材料中固有层间模态的拉曼强度的影响,并为识别这些材料中的堆叠顺序提供了一种实用的方法。

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