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量子自旋冰的精细结构常数很大。

Emergent Fine Structure Constant of Quantum Spin Ice Is Large.

作者信息

Pace Salvatore D, Morampudi Siddhardh C, Moessner Roderich, Laumann Chris R

机构信息

TCM Group, Cavendish Laboratory, University of Cambridge, Cambridge CB3 0HE, United Kingdom.

Department of Physics, Boston University, Boston, Massachusetts 02215, USA.

出版信息

Phys Rev Lett. 2021 Sep 10;127(11):117205. doi: 10.1103/PhysRevLett.127.117205.

Abstract

Condensed-matter systems provide alternative "vacua" exhibiting emergent low-energy properties drastically different from those of the standard model. A case in point is the emergent quantum electrodynamics (QED) in the fractionalized topological magnet known as quantum spin ice, whose magnetic monopoles set it apart from the familiar QED of the world we live in. Here, we show that the two greatly differ in their fine structure constant α, which parametrizes how strongly matter couples to light: α_{QSI} is more than an order of magnitude greater than α_{QED}≈1/137. Furthermore, α_{QSI}, the emergent speed of light, and all other parameters of the emergent QED, are tunable by engineering the microscopic Hamiltonian. We find that α_{QSI} can be tuned all the way from zero up to what is believed to be the strongest possible coupling beyond which QED confines. In view of the small size of its constrained Hilbert space, this marks out quantum spin ice as an ideal platform for studying exotic quantum field theories and a target for quantum simulation. The large α_{QSI} implies that experiments probing candidate condensed-matter realizations of quantum spin ice should expect to observe phenomena arising due to strong interactions.

摘要

凝聚态系统提供了另类的“真空”,展现出与标准模型截然不同的涌现低能特性。一个典型例子是在被称为量子自旋冰的分数化拓扑磁体中涌现的量子电动力学(QED),其磁单极子使其有别于我们生活的世界中常见的QED。在此,我们表明二者在精细结构常数α上有很大差异,α表征了物质与光耦合的强度:α_QSI比α_QED≈1/137大一个数量级以上。此外,α_QSI、涌现的光速以及涌现QED的所有其他参数,都可通过设计微观哈密顿量来调节。我们发现α_QSI可以从零一直调节到据信是QED发生禁闭之前的最强可能耦合。鉴于其受限希尔伯特空间的规模较小,这使量子自旋冰成为研究奇异量子场论的理想平台以及量子模拟的目标。较大的α_QSI意味着,探测量子自旋冰候选凝聚态实现的实验应该会观察到因强相互作用而产生的现象。

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