Suppr超能文献

BiSe范德华薄膜中层间振动的相干控制

Coherent control of interlayer vibrations in BiSe van der Waals thin-films.

作者信息

Park Tae Gwan, Na Hong Ryeol, Chun Seung-Hyun, Cho Won Bae, Lee Sunghun, Rotermund Fabian

机构信息

Department of Physics, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, Republic of Korea.

Department of Physics and Astronomy, Sejong University, Seoul 05006, Korea.

出版信息

Nanoscale. 2021 Nov 25;13(45):19264-19273. doi: 10.1039/d1nr05075c.

Abstract

Interlayer vibrations with discrete quantized modes in two-dimensional (2D) materials can be excited by ultrafast light due to the inherent low dimensionality and van der Waals force as a restoring force. Controlling such interlayer vibrations in layered materials, which are closely related to fundamental nanomechanical interactions and thermal transport, in spatial- and time-domain provides an in-depth understanding of condensed matters and potential applications for advanced phononic and photonics devices. The manipulation of interlayer vibrational modes has been implemented in a spatial domain through material design to develop novel optoelectronic and phononic devices with various 2D materials, but such control in a time domain is still lacking. We present an all-optical method for controlling the interlayer vibrations in a highly precise manner with BiSe as a promising optoelectronic and thermoelasticity material in layered structures using a coherently controlled pump and probe scheme. The observed thickness-dependent fast interlayer breathing modes and substrate-induced slow interfacial modes can be exactly explained by a modified linear chain model including coupling effect with substrate. In addition, the results of coherent control experiments also agree with the simulation results based on the interference of interlayer vibrations. This investigation is universally applicable for diverse 2D materials and provides insight into the interlayer vibration-related dynamics and novel device implementation based on an ultrafast timescale interlayer-spacing modulation scheme.

摘要

由于二维(2D)材料固有的低维特性以及作为恢复力的范德华力,超快光可以激发二维材料中具有离散量子化模式的层间振动。在空间和时域中控制层状材料中的这种层间振动,这与基本的纳米机械相互作用和热传输密切相关,有助于深入理解凝聚态物质,并为先进的声子和光子器件提供潜在应用。通过材料设计在空间域中实现了对层间振动模式的操纵,以开发具有各种二维材料的新型光电器件和声子器件,但在时域中的这种控制仍然缺乏。我们提出了一种全光方法,使用相干控制的泵浦和探测方案,以高度精确的方式控制层状结构中作为有前途的光电子和热弹性材料的BiSe的层间振动。通过包括与衬底耦合效应的改进线性链模型,可以准确解释观察到的厚度依赖的快速层间呼吸模式和衬底诱导的慢速界面模式。此外,相干控制实验的结果也与基于层间振动干涉的模拟结果一致。这项研究普遍适用于各种二维材料,并基于超快时间尺度的层间距调制方案,深入了解与层间振动相关的动力学和新型器件实现。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验