Vortex Pinning of Ba 0.62 K 0.38 BiO 3 Investigated by Magneto-Optical Kerr-Effect and Magnetization Measurements

Vortex pinning plays a crucial role in determining properties of type-II superconductors. For example, it governs the irreversible magnetic response as well as dissipation caused by vortex motion. Here, we study vortex pinning in the three-dimensional oxide superconductor Ba 1− x K x BiO 3 using high-sensitivity magneto-optical Kerr-effect (MOKE) and detailed magnetization measurements. We find that the zero-field MOKE signal in the superconducting state exhibits a pronounced magnetic-history dependence. This behavior closely resembles the remanent magnetization caused by trapped vortices. Furthermore, we demonstrate that the evolution of the MOKE signals is well described by Bean’s critical-state model for trapped vortices. Our results establish MOKE as a viable optical and mesoscopic probe of vortex pinning in type-II superconductors, providing a new complementary approach to investigate mixed-state phenomena. We also find that the training-field dependence of the MOKE response is linear near zero training field, without any detectable anomalies indicative of spontaneous time-reversal-symmetry breaking in an unconventional superconducting state under the present experimental conditions. Our study defines a clear protocol to distinguish vortex-induced MOKE responses from those associated with a time-reversal-symmetry broken superconducting order parameter.

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Publication Details

Journal
Journal of the Physical Society of Japan
Published
2026-10-01
DOI
https://doi.org/10.7566/jpsj.95.114701
Primary Topic
Physics of Superconductivity and Magnetism
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article
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article

Vortex Pinning of Ba 0.62 K 0.38 BiO 3 Investigated by Magneto-Optical Kerr-Effect and Magnetization Measurements

Xing He, Degao Zhai, Yasutomo J. Uemura, Soichiro Yamane et al.
Journal of the Physical Society of Japan
Physics of Superconductivity and Magnetism
article

Vortex Pinning of Ba 0.62 K 0.38 BiO 3 Investigated by Magneto-Optical Kerr-Effect and Magnetization Measurements

Xing He, Degao Zhai, Yasutomo J. Uemura, Soichiro Yamane, M. Greven, Yipeng Cai, Shingo Yonezawa, S. Sharma, Atsutoshi Ikeda, Sota Nakamura, Siddharth Gorregattu
article en

Abstract

Vortex pinning plays a crucial role in determining properties of type-II superconductors. For example, it governs the irreversible magnetic response as well as dissipation caused by vortex motion. Here, we study vortex pinning in the three-dimensional oxide superconductor Ba 1− x K x BiO 3 using high-sensitivity magneto-optical Kerr-effect (MOKE) and detailed magnetization measurements. We find that the zero-field MOKE signal in the superconducting state exhibits a pronounced magnetic-history dependence. This behavior closely resembles the remanent magnetization caused by trapped vortices. Furthermore, we demonstrate that the evolution of the MOKE signals is well described by Bean’s critical-state model for trapped vortices. Our results establish MOKE as a viable optical and mesoscopic probe of vortex pinning in type-II superconductors, providing a new complementary approach to investigate mixed-state phenomena. We also find that the training-field dependence of the MOKE response is linear near zero training field, without any detectable anomalies indicative of spontaneous time-reversal-symmetry breaking in an unconventional superconducting state under the present experimental conditions. Our study defines a clear protocol to distinguish vortex-induced MOKE responses from those associated with a time-reversal-symmetry broken superconducting order parameter.

Journal of the Physical Society of JapanVol. 95(11)
University of Minnesota (US), Kyoto University (JP), Columbia University (US)
Openalex Percentile: Top 18%
Physics of Superconductivity and Magnetism
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