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Studying Quantum Materials with Scanning SQUID Microscopy
Annual Review of Condensed Matter Physics ( IF 22.6 ) Pub Date : 2022-03-10 , DOI: 10.1146/annurev-conmatphys-031620-104226
Eylon Persky 1 , Ilya Sochnikov 2, 3 , Beena Kalisky 1
Affiliation  

Electronic correlations give rise to fascinating macroscopic phenomena such as superconductivity, magnetism, and topological phases of matter. Although these phenomena manifest themselves macroscopically, fully understanding the underlying microscopic mechanisms often requires probing on multiple length scales. Spatial modulations on the mesoscopic scale are especially challenging to probe, owing to the limited range of suitable experimental techniques. Here, we review recent progress in scanning superconducting quantum interference device (SQUID) microscopy. We demonstrate how scanning SQUID combines unmatched magnetic field sensitivity and highly versatile designs, by surveying discoveries in unconventional superconductivity, exotic magnetism, topological states, and more. Finally, we discuss how SQUID microscopy can be further developed to answer the increasing demand for imaging new quantum materials.

中文翻译:


用扫描 SQUID 显微镜研究量子材料

电子相关性产生了令人着迷的宏观现象,例如超导性、磁性和物质的拓扑相。尽管这些现象在宏观上表现出来,但要充分了解潜在的微观机制通常需要在多个长度尺度上进行探索。由于合适的实验技术范围有限,介观尺度上的空间调制特别难以探测。在这里,我们回顾了扫描超导量子干涉装置 (SQUID) 显微镜的最新进展。我们通过调查非常规超导、奇异磁性、拓扑状态等方面的发现,展示了扫描 SQUID 如何结合无与伦比的磁场灵敏度和高度通用的设计。最后,

更新日期:2022-03-10
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