Influence of Magnetic Field on Surface Andreev Bound States in Superfluid \(^3\)He-B Studied by Mobility of Electron Bubble

IF 1.4 3区 物理与天体物理 Q4 PHYSICS, APPLIED
Hiroki Ikegami, Kimitoshi Kono, Yasumasa Tsutsumi
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Abstract

The B phase of superfluid \(^\text {3}\)He (\(^\text {3}\)He-B) is topologically nontrivial, and the surface Andreev bound states formed on a surface are conceived as Majorana fermions. In a magnetic field, the surface Andreev bound states acquire a Zeeman gap. How the Zeeman gap opens when a magnetic field is applied is intimately related to how the topological properties are lost. In this article, we study the mobility of an electron bubble trapped under a free surface of \(^\text {3}\)He-B in a magnetic field of 0.25 T to examine the influence of the magnetic field on the surface Andreev bound states. We observe experimentally and theoretically that, with decreasing temperature, the mobility at 0.25 T increases steeper than that in zero magnetic field when the thermal energy is comparable to the Zeeman energy, while the mobility is slightly smaller than that in zero magnetic field at higher temperatures. These features are understood by the opening of the Zeeman gap, the resulting change in the density of states within the bulk superfluid gap, and the distortion of the bulk superfluid gap by the magnetic field.

超流体中磁场对表面Andreev束缚态的影响\(^3\)电子气泡迁移率研究He-B
超流体\(^\text {3}\) He (\(^\text {3}\) He-B)的B相在拓扑上是非平凡的,在表面上形成的表面Andreev束缚态被认为是马约拉纳费米子。在磁场中,表面安德烈夫束缚态获得塞曼隙。当施加磁场时,塞曼隙如何打开与拓扑性质如何丢失密切相关。在本文中,我们研究了在0.25 T磁场下被困在\(^\text {3}\) He-B自由表面下的电子泡的迁移率,以考察磁场对表面Andreev束缚态的影响。我们从实验和理论上观察到,随着温度的降低,当热能与塞曼能相当时,0.25 T下的迁移率比零磁场下的迁移率增加得更快,而在更高温度下,迁移率略小于零磁场下的迁移率。这些特征可以通过塞曼隙的打开、由此导致的体超流体隙内状态密度的变化以及磁场对体超流体隙的扭曲来理解。
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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来源期刊
Journal of Low Temperature Physics
Journal of Low Temperature Physics 物理-物理:凝聚态物理
CiteScore
3.30
自引率
25.00%
发文量
245
审稿时长
1 months
期刊介绍: The Journal of Low Temperature Physics publishes original papers and review articles on all areas of low temperature physics and cryogenics, including theoretical and experimental contributions. Subject areas include: Quantum solids, liquids and gases; Superfluidity; Superconductivity; Condensed matter physics; Experimental techniques; The Journal encourages the submission of Rapid Communications and Special Issues.
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