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通过皮秒超声成像观察范德华纳米层界面处的高频弹性耦合

High-Frequency Elastic Coupling at the Interface of van der Waals Nanolayers Imaged by Picosecond Ultrasonics.

作者信息

Greener Jake D G, de Lima Savi Elton, Akimov Andrey V, Raetz Samuel, Kudrynskyi Zakhar, Kovalyuk Zakhar D, Chigarev Nikolay, Kent Anthony, Patané Amalia, Gusev Vitalyi

机构信息

School of Physics and Astronomy , The University Nottingham , Nottingham NG7 2RD , U.K.

Laboratoire d'Acoustique de l'Université du Mans, LAUM - UMR 6613 CNRS , Le Mans Université , Avenue Olivier Messiaen , 72085 Le Mans Cedex 9 , France.

出版信息

ACS Nano. 2019 Oct 22;13(10):11530-11537. doi: 10.1021/acsnano.9b05052. Epub 2019 Sep 24.

Abstract

Although the topography of van de Waals (vdW) layers and heterostructures can be imaged by scanning probe microscopy, high-frequency interface elastic properties are more difficult to assess. These can influence the stability, reliability, and performance of electronic devices that require uniform layers and interfaces. Here, we use picosecond ultrasonics to image these properties in vdW layers and heterostructures based on well-known exfoliable materials, .., InSe, hBN, and graphene. We reveal a strong, uniform elastic coupling between vdW layers over a wide range of frequencies of up to tens of gigahertz (GHz) and in-plane areas of 100 μm. In contrast, the vdW layers can be weakly coupled to their supporting substrate, behaving effectively as free-standing membranes. Our data and analysis demonstrate that picosecond ultrasonics offers opportunities to probe the high-frequency elastic coupling of vdW nanolayers and image both "perfect" and "broken" interfaces between different materials over a wide frequency range, as required for future scientific and technological developments.

摘要

尽管范德华(vdW)层和异质结构的形貌可以通过扫描探针显微镜成像,但高频界面弹性特性更难评估。这些特性会影响需要均匀层和界面的电子器件的稳定性、可靠性和性能。在此,我们使用皮秒超声对基于知名可剥离材料(如InSe、hBN和石墨烯)的vdW层和异质结构中的这些特性进行成像。我们揭示了在高达数十吉赫兹(GHz)的宽频率范围内以及100μm的平面区域内,vdW层之间存在强而均匀的弹性耦合。相比之下,vdW层与它们的支撑衬底的耦合较弱,实际上表现为独立的膜。我们的数据和分析表明,皮秒超声提供了机会来探测vdW纳米层的高频弹性耦合,并在未来科学技术发展所需的宽频率范围内对不同材料之间的“完美”和“破损”界面进行成像。

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