SRF material research using muon spin rotation and beta-detected nuclear magnetic resonance

T. Junginger, R. Laxdal, W. A. MacFarlane, Andreas Suter
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Abstract

Muon spins precess in transverse magnetic fields and emit a positron preferentially in the spin direction at the instant of decay, enabling muon spin rotation (μSR) as a precise probe of local magnetic fields in matter. μSR has been used to characterize superconducting radio-frequency (SRF) materials since 2010. At TRIUMF, a beam of 4.2 MeV μ+ is implanted at a material-dependent depth of approximately 150 μm. A dedicated spectrometer was developed to measure the field of first vortex penetration and pinning strength in SRF materials in parallel magnetic fields of up to 300 mT. A low-energy beam available at PSI implants μ+ at variable depth in the London layer allowing for direct measurements of the London penetration depth from which other material parameters relevant for SRF applications, such as the lower critical field and the superheating field, can be calculated. Beta-detected nuclear magnetic resonance (β-NMR) is a technique similar to low-energy μSR using beams of low-energy β radioactive ions. With a recent upgrade, it is capable of detecting the penetration of parallel magnetic vortices, depth resolved with nanometer resolution at applied fields of up to 200 mT. In this paper, we review the impact and capabilities of these techniques for SRF research.
利用μ介子自旋旋转和β检测核磁共振进行 SRF 材料研究
μ介子自旋在横向磁场中发生预处理,并在衰变瞬间优先沿自旋方向发射正电子,从而使μ介子自旋旋转(μSR)成为物质中局部磁场的精确探测器。自2010年以来,μSR一直被用于表征超导射频(SRF)材料。在 TRIUMF,一束 4.2 MeV μ+ 射束被植入大约 150 μm 的材料深度。我们开发了一种专用光谱仪,用于测量 SRF 材料在高达 300 mT 的平行磁场中的第一涡穿透场和钉扎强度。PSI 可用低能束在伦敦层的不同深度植入 μ+,从而可以直接测量伦敦穿透深度,并据此计算与 SRF 应用相关的其他材料参数,如较低临界磁场和过热磁场。β-检测核磁共振(β-NMR)是一种类似于低能 μSR 的技术,使用的是低能 β 放射性离子束。经过最近的升级,它能够探测平行磁涡旋的穿透,在高达 200 mT 的外加磁场中以纳米分辨率进行深度分辨。在本文中,我们回顾了这些技术对 SRF 研究的影响和能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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