超导电性
凝聚态物理
磁场
顺磁性
磁化
材料科学
显微镜
磁通量
电流(流体)
磁力显微镜
通量泵
领域(数学)
Ⅱ型超导体
物理
高温超导
磁通钉扎
焊剂(冶金)
磁化率
样品(材料)
磁强计
临界电流
超导磁体
电流密度
梅斯纳效应
临界场
磁滞
表征(材料科学)
核磁共振
作者
Yuto Kinoshita,Masayuki Toyoda,Yoshiaki Kobayashi,Masayuki Itoh,Masashi Tokunaga
标识
DOI:10.1088/1361-6668/ae90f2
摘要
Spatially resolved characterization of the critical current density Jc in superconductors under high magnetic fields is crucial for both fundamental understanding and practical applications. However, conventional techniques primarily provide bulk-averaged values, making it difficult to resolve local variations of Jc, especially in high magnetic fields. In this work, we develop a magneto-optical imaging (MOI) technique that enables visualization of superconducting critical states in steady magnetic fields up to 13 T. This is achieved by employing a paramagnetic Nd-garnet indicator combined with a polarizing microscope system. Using this method, we directly image the magnetic flux distribution in a bulk single crystal of an iron-based superconductor Ba(Fe1-xCox)2As2 (x = 0.075) at 12 K and 20 K across the entire sample area (approximately 1 mm). From the measured magnetic field distributions, we quantitatively reconstruct the spatial distribution of the critical current density. The extracted field dependence of Jc is in good agreement with that obtained from conventional magnetization measurements. Furthermore, we demonstrate vector mapping of current flow within the sample by converting the magnetic field distribution into local current-density distributions. Our results establish high-field MOI as a powerful approach for spatially resolved evaluation of superconducting critical states and provide a new pathway for investigating inhomogeneous current transport in superconductors under high magnetic fields.
科研通智能强力驱动
Strongly Powered by AbleSci AI