Anomalous Crystalline-Electromagnetic Responses in Semimetals

IF 11.6 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Physical Review X Pub Date : 2024-12-09 DOI:10.1103/physrevx.14.041060
Mark R. Hirsbrunner, Oleg Dubinkin, F. J. Burnell, Taylor L. Hughes
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Abstract

We present a unifying framework that allows us to study the mixed crystalline-electromagnetic responses of topological semimetals in spatial dimensions up to D=3 through dimensional augmentation and reduction procedures. We show how this framework illuminates relations between the previously known topological semimetals and use it to identify a new class of quadrupolar nodal line semimetals for which we construct a lattice tight-binding Hamiltonian. We further utilize this framework to quantify a variety of mixed crystalline-electromagnetic responses, including several that have not previously been explored in existing literature, and show that the corresponding coefficients are universally proportional to weighted momentum-energy multipole moments of the nodal points (or lines) of the semimetal. We introduce lattice gauge fields that couple to the crystal momentum and describe how tools including the gradient expansion procedure, dimensional reduction, compactification, and the Kubo formula can be used to systematically derive these responses and their coefficients. We further substantiate these findings through analytical physical arguments, microscopic calculations, and explicit numerical simulations employing tight-binding models. Published by the American Physical Society 2024
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半金属中的异常晶体电磁响应
我们提出了一个统一的框架,允许我们研究混合晶体-电磁响应的拓扑半金属在空间维度高达D=3通过维增和降程序。我们展示了这个框架如何阐明以前已知的拓扑半金属之间的关系,并使用它来识别一类新的四极节线半金属,我们为其构建了一个晶格紧密结合的哈密顿量。我们进一步利用这一框架来量化各种混合晶体-电磁响应,包括一些在现有文献中尚未探索的响应,并表明相应的系数与半金属的节点(或线)的加权动量-能量多极矩普遍成正比。我们介绍了与晶体动量耦合的晶格规范场,并描述了如何使用包括梯度展开过程、降维、紧化和Kubo公式在内的工具来系统地推导这些响应及其系数。我们通过分析物理论证、微观计算和采用紧密结合模型的明确数值模拟进一步证实了这些发现。2024年由美国物理学会出版
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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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