Low-Frequency Shear and Layer-Breathing Modes in Raman Scattering of Two-Dimensional Materials

IF 16 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
ACS Nano Pub Date : 2017-11-03 DOI:10.1021/acsnano.7b06551
Liangbo Liang, Jun Zhang, Bobby G. Sumpter, Qing-Hai Tan, Ping-Heng Tan*, Vincent Meunier*
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引用次数: 161

Abstract

Ever since the isolation of single-layer graphene in 2004, two-dimensional layered structures have been among the most extensively studied classes of materials. To date, the pool of two-dimensional materials (2DMs) continues to grow at an accelerated pace and already covers an extensive range of fascinating and technologically relevant properties. An array of experimental techniques have been developed and used to characterize and understand these properties. In particular, Raman spectroscopy has proven to be a key experimental technique, thanks to its capability to identify minute structural and electronic effects in nondestructive measurements. While high-frequency (HF) intralayer Raman modes have been extensively employed for 2DMs, recent experimental and theoretical progress has demonstrated that low-frequency (LF) interlayer Raman modes are more effective at determining layer numbers and stacking configurations and provide a unique opportunity to study interlayer coupling. These advantages are due to 2DMs’ unique interlayer vibration patterns where each layer behaves as an almost rigidly moving object with restoring forces corresponding to weak interlayer interactions. Compared to HF Raman modes, the relatively small attention originally devoted to LF Raman modes is largely due to their weaker signal and their proximity to the strong Rayleigh line background, which previously made their detection challenging. Recent progress in Raman spectroscopy with technical and hardware upgrades now makes it possible to probe LF modes with a standard single-stage Raman system and has proven crucial to characterize and understand properties of 2DMs. Here, we present a comprehensive and forward-looking review on the current status of exploiting LF Raman modes of 2DMs from both experimental and theoretical perspectives, revealing the fundamental physics and technological significance of LF Raman modes in advancing the field of 2DMs. We review a broad array of materials, with varying thickness and stacking configurations, discuss the effect of in-plane anisotropy, and present a generalized linear chain model and interlayer bond polarizability model to rationalize the experimental findings. We also discuss the instrumental improvements of Raman spectroscopy to enhance and separate LF Raman signals from the Rayleigh line. Finally, we highlight the opportunities and challenges ahead in this fast-developing field.

Abstract Image

二维材料拉曼散射中的低频剪切和层呼吸模式
自2004年单层石墨烯分离以来,二维层状结构一直是研究最广泛的材料类别之一。迄今为止,二维材料(2dm)的池继续以加速的速度增长,并且已经涵盖了广泛的迷人和技术相关的特性。已经开发了一系列实验技术,并用于表征和理解这些特性。特别是,拉曼光谱已被证明是一项关键的实验技术,这要归功于它在无损测量中识别微小结构和电子效应的能力。虽然高频(HF)层内拉曼模式已广泛应用于2dm,但最近的实验和理论进展表明,低频(LF)层间拉曼模式在确定层数和堆叠配置方面更有效,并为研究层间耦合提供了独特的机会。这些优势是由于2dm独特的层间振动模式,其中每层表现为几乎刚性移动的物体,具有对应于弱层间相互作用的恢复力。与高频拉曼模式相比,低频拉曼模式最初受到的关注相对较少,主要是因为它们的信号较弱,并且靠近强瑞利线背景,这使得它们的检测具有挑战性。随着技术和硬件的升级,拉曼光谱技术的最新进展使得使用标准的单级拉曼系统探测LF模式成为可能,并且已被证明对表征和了解2dm的特性至关重要。本文从实验和理论两方面全面、前沿性地综述了二维二维材料的低频拉曼模式的研究现状,揭示了低频拉曼模式对推进二维二维材料领域发展的基础物理和技术意义。我们回顾了一系列具有不同厚度和堆叠结构的材料,讨论了面内各向异性的影响,并提出了广义线性链模型和层间键极化率模型来合理化实验结果。我们还讨论了拉曼光谱的仪器改进,以增强和分离来自瑞利线的低频拉曼信号。最后,我们强调了这一快速发展领域所面临的机遇和挑战。
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来源期刊
ACS Nano
ACS Nano 工程技术-材料科学:综合
CiteScore
26.00
自引率
4.10%
发文量
1627
审稿时长
1.7 months
期刊介绍: ACS Nano, published monthly, serves as an international forum for comprehensive articles on nanoscience and nanotechnology research at the intersections of chemistry, biology, materials science, physics, and engineering. The journal fosters communication among scientists in these communities, facilitating collaboration, new research opportunities, and advancements through discoveries. ACS Nano covers synthesis, assembly, characterization, theory, and simulation of nanostructures, nanobiotechnology, nanofabrication, methods and tools for nanoscience and nanotechnology, and self- and directed-assembly. Alongside original research articles, it offers thorough reviews, perspectives on cutting-edge research, and discussions envisioning the future of nanoscience and nanotechnology.
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