石墨烯吸附诱导的手性声子

IF 3.7 2区 物理与天体物理 Q1 Physics and Astronomy Physical Review B Pub Date : 2024-11-01 DOI:10.1103/physrevb.110.184301
Hao Chen, Hanyu Wang, Haoshu Li, Lifa Zhang
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引用次数: 0

摘要

近年来,手性声子领域发展迅速,而二维材料为此类研究提供了理想的平台。然而,作为二维材料的先驱,石墨烯体系中的手性声子尚未得到研究,因为其结合的𝒫𝒯对称性抑制了手性声子的存在。在这项工作中,我们通过在石墨烯上吸附原子来诱导手性声子。这些手性声子在高对称点 β 和 β′处具有量子化的伪角动量。除了声子的手性之外,吸附还能引起非零声子贝里曲率。在温度梯度下,非平衡声子分布会在吸附的石墨烯中产生总声子角动量和非线性声子霍尔电流。此外,石墨烯中的声子手性折叠可以通过特定的吸附方式实现,这为其拉曼探测提供了优势。我们的研究揭示了石墨烯中吸附诱导的手性声子效应,为进一步探索石墨烯的手性声子物理铺平了道路。
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Chiral phonons induced by adsorption on graphene
The field of chiral phonons has developed rapidly in recent years, and two-dimensional materials provide an ideal platform for such research. However, as a pioneer of two-dimensional materials, chiral phonons in the graphene system have not been studied because the combined 𝒫𝒯 symmetry suppresses the existence of chiral phonons. In this work, we induce chiral phonons by adsorbing atoms on graphene. These chiral phonons can have quantized pseudoangular momentum at high-symmetry points 𝐾 and 𝐾. In addition to phonon chirality, adsorption can also induce nonzero phonon Berry curvature. Under a temperature gradient, the nonequilibrium phonon distribution can produce a total phonon angular momentum and nonlinear phonon Hall current in adsorbed graphene. Moreover, phonon chirality folding in graphene can be achieved through a specific adsorption way, which provides advantages for its Raman detection. Our work reveals the chiral phonon effect induced by adsorption in graphene, paving the way for further exploration of its chiral phonon physics.
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来源期刊
Physical Review B
Physical Review B 物理-物理:凝聚态物理
CiteScore
6.70
自引率
32.40%
发文量
0
审稿时长
3.0 months
期刊介绍: Physical Review B (PRB) is the world’s largest dedicated physics journal, publishing approximately 100 new, high-quality papers each week. The most highly cited journal in condensed matter physics, PRB provides outstanding depth and breadth of coverage, combined with unrivaled context and background for ongoing research by scientists worldwide. PRB covers the full range of condensed matter, materials physics, and related subfields, including: -Structure and phase transitions -Ferroelectrics and multiferroics -Disordered systems and alloys -Magnetism -Superconductivity -Electronic structure, photonics, and metamaterials -Semiconductors and mesoscopic systems -Surfaces, nanoscience, and two-dimensional materials -Topological states of matter
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