狄拉克锥外二维光子晶体中的极化陈氏带

IF 11.6 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY
Xin Xie, Kai Sun, Hui Deng
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引用次数: 0

摘要

极化子是由强光-物质相互作用形成的,为研究拓扑相开辟了新的途径,在拓扑相中,空间和时间的对称性可以分别通过光和物质组分来控制。然而,大多数关于拓扑极化子的研究都局限于在大波数下具有狄拉克锥的六边形光子晶格。这限制了关键的拓扑特性和器件性能,包括亚mev间隙大小,阻碍了进一步的实验研究和极化陈氏绝缘体系统的未来应用。在这项研究中,我们超越了传统的狄拉克锥框架,并在光子晶体(PhCs)中引入了两种可选的能带结构,作为实现极化陈氏带的有希望的平台:连续介质中具有对称保护束缚态的能带和Γ点处具有对称保护简并态的能带。这些带结构在各种PhC晶格中普遍存在,并且具有对实验研究至关重要的特征。我们展示了更高的陈氏数带,更均匀的Berry曲率分布,以及实验上可行的系统,能够实现大于10 meV的拓扑间隙。我们的研究结果显示了极化陈氏带在二维PhCs中的广泛适用性,并为增强拓扑光子器件的功能和性能提供了设计原则,为更好地理解和使用拓扑物理开辟了令人兴奋的可能性。2025年由美国物理学会出版
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Polariton Chern Bands in 2D Photonic Crystals beyond Dirac Cones
Polaritons, formed by strong light-matter interactions, open new avenues for studying topological phases, where the spatial and time symmetries can be controlled via the light and matter components, respectively. However, most research on topological polaritons has been confined to hexagonal photonic lattices featuring Dirac cones at large wave numbers. This restricts key topological properties and device performance, including sub-meV gap sizes that hinder further experimental investigations and future applications of polariton Chern insulator systems. In this study, we move beyond the traditional Dirac cone framework and introduce two alternative band structures in photonic crystals (PhCs) as promising platforms for realizing polariton Chern bands: bands with symmetry-protected bound states in the continuum and bands with symmetry-protected degeneracies at the Γ points. These band structures are prevalent in various PhC lattices and have features crucial for experimental studies. We show examples of higher Chern number bands, more uniform Berry curvature distributions, and experimentally feasible systems capable of achieving topological gap greater than 10 meV. Our findings show the broad applicability of polariton Chern bands in 2D PhCs and provide design principles for enhancing the functionality and performance of topological photonic devices, opening up exciting possibilities for better understanding and using topological physics. Published by the American Physical Society 2025
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来源期刊
Physical Review X
Physical Review X PHYSICS, MULTIDISCIPLINARY-
CiteScore
24.60
自引率
1.60%
发文量
197
审稿时长
3 months
期刊介绍: Physical Review X (PRX) stands as an exclusively online, fully open-access journal, emphasizing innovation, quality, and enduring impact in the scientific content it disseminates. Devoted to showcasing a curated selection of papers from pure, applied, and interdisciplinary physics, PRX aims to feature work with the potential to shape current and future research while leaving a lasting and profound impact in their respective fields. Encompassing the entire spectrum of physics subject areas, PRX places a special focus on groundbreaking interdisciplinary research with broad-reaching influence.
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