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表面声子石墨烯。

Surface phononic graphene.

机构信息

National Laboratory of Solid-State Microstructures and Department of Materials Science and Engineering, College of Engineering and Applied Sciences, Nanjing University, Nanjing 210093, China.

Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing 210093, China.

出版信息

Nat Mater. 2016 Dec;15(12):1243-1247. doi: 10.1038/nmat4743. Epub 2016 Sep 5.

Abstract

Strategic manipulation of wave and particle transport in various media is the key driving force for modern information processing and communication. In a strongly scattering medium, waves and particles exhibit versatile transport characteristics such as localization, tunnelling with exponential decay, ballistic, and diffusion behaviours due to dynamical multiple scattering from strong scatters or impurities. Recent investigations of graphene have offered a unique approach, from a quantum point of view, to design the dispersion of electrons on demand, enabling relativistic massless Dirac quasiparticles, and thus inducing low-loss transport either ballistically or diffusively. Here, we report an experimental demonstration of an artificial phononic graphene tailored for surface phonons on a LiNbO integrated platform. The system exhibits Dirac quasiparticle-like transport, that is, pseudo-diffusion at the Dirac point, which gives rise to a thickness-independent temporal beating for transmitted pulses, an analogue of Zitterbewegung effects. The demonstrated fully integrated artificial phononic graphene platform here constitutes a step towards on-chip quantum simulators of graphene and unique monolithic electro-acoustic integrated circuits.

摘要

在各种介质中对波和粒子输运进行策略性操控是现代信息处理和通讯的关键推动因素。在强散射介质中,由于强散射体或杂质的动态多重散射,波和粒子表现出各种输运特性,如局域化、指数衰减的隧道、弹道和扩散行为。最近对石墨烯的研究从量子角度提供了一种独特的方法来按需设计电子的色散,从而诱导相对论无质量狄拉克准粒子,从而实现弹道或扩散的低损耗输运。在这里,我们报告了一个在集成 LiNbO 平台上用于表面声子的人工声子石墨烯的实验演示。该系统表现出类狄拉克准粒子输运,即在狄拉克点处的类扩散,这导致传输脉冲的厚度独立的时频拍,这是 Zitterbewegung 效应的模拟。这里演示的完全集成的人工声子石墨烯平台是朝着石墨烯的片上量子模拟器和独特的单片电声集成电路迈出的一步。

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