Quantum decoherence by magnetic fluctuations in a magnetic topological insulator

IF 6.2 1区 物理与天体物理 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Ruben Saatjian, Simon Dovrén, Kohtaro Yamakawa, Ryan S. Russell, James G. Analytis, John W. Harter
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Abstract

In magnetic topological insulators, spontaneous time-reversal symmetry breaking by intrinsic magnetic order can gap the topological surface spectrum, resulting in exotic properties like axion electrodynamics, the quantum anomalous Hall effect, and other topological magnetoelectric responses. Understanding the magnetic order and its coupling to topological states is essential to harness these properties. Here, we leverage near-resonant magnetic dipole optical second harmonic generation to probe magnetic fluctuations in the candidate axion insulator EuSn2(As,P)2 across its antiferromagnetic phase boundary. We observe a pronounced dimensional crossover in the quantum decoherence induced by magnetic fluctuations, whereby two-dimensional in-plane ferromagnetic correlations at high temperatures give way to three-dimensional long-range order at the Néel temperature. We also observe the breaking of rotational symmetry within the long-range-ordered antiferromagnetic state and map out the resulting spatial domain structure. More generally, we demonstrate the unique capabilities of nonlinear optical spectroscopy to study quantum coherence and fluctuations in magnetic quantum materials.

Abstract Image

磁性拓扑绝缘体中磁涨落的量子退相干
在磁性拓扑绝缘体中,由本征磁序引起的自发时间反转对称性破缺会导致拓扑表面谱的间隙,从而产生轴子电动力学、量子反常霍尔效应和其他拓扑磁电响应等奇异性质。了解磁序及其与拓扑状态的耦合是利用这些特性的必要条件。在这里,我们利用近共振磁偶极子光学二次谐波产生来探测候选轴子绝缘体EuSn2(As,P)2在其反铁磁相边界上的磁波动。我们观察到由磁波动引起的量子退相干中存在明显的维度交叉,即在高温下二维平面内铁磁相关让位给在n el温度下三维长程有序。我们还观察到在长距离有序反铁磁状态下旋转对称性的破坏,并绘制出由此产生的空间域结构。更一般地说,我们展示了非线性光谱学研究磁性量子材料中的量子相干性和涨落的独特能力。
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来源期刊
npj Quantum Materials
npj Quantum Materials Materials Science-Electronic, Optical and Magnetic Materials
CiteScore
10.60
自引率
3.50%
发文量
107
审稿时长
6 weeks
期刊介绍: npj Quantum Materials is an open access journal that publishes works that significantly advance the understanding of quantum materials, including their fundamental properties, fabrication and applications.
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