Contribution of Andreev Reflection to the Mobility of Surface State Electrons on Superfluid \(^3\)He-B

IF 1.1 3区 物理与天体物理 Q4 PHYSICS, APPLIED
Yasumasa Tsutsumi, Hiroki Ikegami, Kimitoshi Kono
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Abstract

The mobility of the Wigner solid on the free surface of superfluid \(^3\)He is determined by the momentum transfer from the scattered \(^3\)He quasiparticles at the free surface. The scattering process of the quasiparticles is classified into the normal reflection and the Andreev retroreflection. Since the quasiparticles nearly conserve the momentum in the process of the Andreev retroreflection at the free surface, the Andreev-reflected quasiparticles do not produce a resistive force to the Wigner solid. In this report, we have analytically calculated the contribution of the Andreev retroreflection to the mobility of the Wigner solid on superfluid \(^3\)He-B by employing a realistic model order parameter with the free surface. The Andreev retroreflection is absent for quasiparticles with energies above the bulk energy gap under the model order parameter. Then, the Andreev retroreflection does not contribute to a rise in the mobility of the Wigner solid on the superfluid \(^3\)He-B. The present model calculation is in good agreement with the previous experimental observation. We have also discussed the Andreev retroreflection under a self-consistently calculated order parameter.

Abstract Image

安德烈耶夫反射对超流体 $$^3$$ He-B 表面态电子迁移率的贡献
超流体(^3)He 自由表面上维格纳固体的流动性是由自由表面上散射的(^3)He 准粒子的动量传递决定的。准粒子的散射过程分为法向反射和安德烈耶夫逆反射。由于准粒子在自由表面的安德烈耶夫逆反射过程中几乎保持了动量,因此安德烈耶夫反射的准粒子不会对维格纳固体产生阻力。在本报告中,我们通过采用自由表面的现实模型阶次参数,分析计算了安德列夫逆向反射对超流体 \(^3\)He-B 上维格纳固体的迁移率的贡献。在模型阶次参数下,能量高于体能隙的准粒子不存在安德烈耶夫逆反射。那么,安德烈耶夫逆反射并不会导致超流体(^3\)He-B 上维格纳固体迁移率的上升。本模型的计算结果与之前的实验观测结果非常吻合。我们还讨论了自洽计算阶次参数下的安德烈耶夫逆反射。
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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