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Direct current magnetic Hall probe technique for measurement of field penetration in thin film superconductors for superconducting radio frequency resonators

超导电性 穿透深度 材料科学 超导射频 磁场 磁强计 凝聚态物理 磁通钉扎 超导磁储能 Ⅱ型超导体 磁通量 梅斯纳效应 伦敦贯入深度 谐振器 通量泵 超导磁体 高温超导 光电子学 光学 物理 粒子加速器 量子力学 梁(结构) 冶金
作者
Iresha Senevirathne,A. Gurevich,Jean Delayen
出处
期刊:Review of Scientific Instruments [American Institute of Physics]
卷期号:93 (5): 055104-055104 被引量:2
标识
DOI:10.1063/5.0083309
摘要

Superconducting Radio Frequency (SRF) cavities used in particle accelerators are typically formed from or coated with superconducting materials. Currently, high purity niobium is the material of choice for SRF cavities that have been optimized to operate near their theoretical field limits. This brings about the need for significant R & D efforts to develop next generation superconducting materials that could outperform Nb and keep up with the demands of new accelerator facilities. To achieve high quality factors and accelerating gradients, the cavity material should be able to remain in the superconducting Meissner state under a high RF magnetic field without penetration of quantized magnetic vortices through the cavity wall. Therefore, the magnetic field at which vortices penetrate a superconductor is one of the key parameters of merit of SRF cavities. Techniques to measure the onset of magnetic field penetration on thin film samples need to be developed to mitigate the issues with the conventional magnetometry measurements that are strongly influenced by the film orientation and shape and edge effects. In this work, we report the development of an experimental setup to measure the field of full flux penetration through films and multi-layered superconductors. Our system combines a small superconducting solenoid that can generate a magnetic field of up to 500 mT at the sample surface and three Hall probes to detect the full flux penetration through the superconductor. This setup can be used to study alternative materials that could potentially outperform niobium, as well as superconductor–insulator–superconductor (SIS) multilayer coatings on niobium.
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