论文标题

物质拓扑量子状态的重力响应

Gravitational Response of Topological Quantum States of Matter

论文作者

Jiang, Guodong, Chen, YingKang, Iyer-Biswas, Srividya, Biswas, Rudro R

论文摘要

识别物质拓扑量子状态的新型拓扑特性,例如用量化的霍尔电导来示例,是朝着具有有吸引力的拓扑属性的材料迈出的宝贵一步,可以保证它们对现实的缺陷,混乱和环境干扰的不可渗透。物质拓扑量子状态的重力耦合系数是有前途的候选者吗?基于对量子厅状态的良好成果的基础,使用脱节作为控制原始空间曲率的工具,没有不受欢迎的人工制品,例如会干扰感兴趣的电子运动,在此,我们报告说,物质的一大型物质拓扑状态是物质的强力反应,即表现出对内在的curverver curverver的响应,即对内在的Spat curverver compartion is anders响应。该现象的特征是拓扑量化的耦合常数。值得注意的是,电荷 - 重力关系在曲率上保持线性,直到晶格上可实现的最大曲率,表明没有高阶非线性反应。我们的发现有助于阐明引力耦合常数拓扑量化的物理原理,类似于量化霍尔电导的Chern数字描述所提供的见解。

Identifying novel topological properties of topological quantum states of matter, such as exemplified by the quantized Hall conductance, is a valuable step towards realizing materials with attractive topological attributes that guarantee their imperviousness to realistic imperfections, disorder and environmental disturbances. Is the gravitational coupling coefficient of topological quantum states of matter a promising candidate? Substantially building on well established results for quantum Hall states, using disclinations as tools for controlled creation of pristine spatial curvature free of undesirable artifacts such as would interfere with the electronic motion of interest, herein we report that a large class of lattice topological states of matter exhibit gravitational response, i.e., charge response to intrinsic spatial curvature. This phenomenon is characterized by a topologically quantized coupling constant. Remarkably, the charge-gravity relationship remains linear in the curvature, up to the maximum curvature achievable on the lattice, demonstrating absence of higher order nonlinear response. Our findings facilitate articulating the physical principles underlying the topological quantization of the gravitational coupling constant, in analogy with the insights offered by the Chern number description of the quantized Hall conductance.

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