Rotating Superfluid 3He in Aerogel

被引:0
|
作者
M. Yamashita
A. Matsubara
R. Ishiguro
Y. Sasaki
O. Ishikawa
M. Kubota
Yu.M. Bunkov
T. Mizusaki
机构
[1] The University of Tokyo,Institute for Solid State Physics
[2] Kyoto University,Department of Physics, Graduate School of Science
[3] Osaka City University,Graduate School of Science
[4] Kyoto University,Research Center for Low Temperature and Materials Sciences
[5] CRTBT,undefined
[6] MRS,undefined
[7] ENS,undefined
来源
关键词
Vortex; Porosity; Rotation Speed; Magnetic Material; Noticeable Change;
D O I
暂无
中图分类号
学科分类号
摘要
Rotational effects on textures of superfluid 3He in aerogel with 98% porosity at a pressure 3.0 MPa were investigated by cw-NMR measurement at 700 kHz (H0=22 mT) under rotation up to 2π rad/s. At rest, the superfluidtransition to the A phase occurred at Taerogelc=2.07 mK and the A phase was supercooled down to TaerogelA→B==1.73∼1.80 mK and became the B phase in the cooling process. In the warming process, the B phase was superheated up to Taerogelc. In the B phase, a new peak appeared in the NMR spectrum by rotating the sample. The intensity of this peak increased as the rotation speed increased almost linealy to Ω and started to be saturated for Ω≥Ωc. We attributed the new peak to the textural change caused by the counter flow and the onset of the saturation at Ωc to the onset of vortex nucleation in aerogel. On deceleration, the peak intensity decreased and disappeared at Ω=Ωv. Further decreasing Ω, the peak intensity increased even at Ω=0. The counterflow peak observed at Ω=0 indicates the existence of persistent current induced by pinned vortices in aerogel. In the A phase, we did not find any noticeable change in the NMR spectrum under the rotation speed up to 2π rad/s, or by cooling through Tc with or without rotation. We concluded that the \documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document} $${\hat \ell }$$ \end{document} texture in the A phase was strongly pinned to aerogel. No spin wave satellite signal localized at a soft, core vortex was observed in contrast to the bulk A phase.
引用
收藏
页码:749 / 755
页数:6
相关论文
共 50 条
  • [21] Sound modes of superfluid 3He in aerogel
    Geller, DA
    Golov, A
    Mulders, N
    Chan, MHW
    Parpia, JM
    JOURNAL OF LOW TEMPERATURE PHYSICS, 1998, 113 (3-4) : 339 - 344
  • [22] Impurity Effects of Aerogel in Superfluid 3He
    Halperin, William P.
    Choi, Hyoungsoon
    Davis, John P.
    Pollanen, Johannes
    JOURNAL OF THE PHYSICAL SOCIETY OF JAPAN, 2008, 77 (11)
  • [23] Superfluid 3He in Squeezed Nematic Aerogel
    Dmitriev, V. V.
    Kutuzov, M. S.
    Soldatov, A. A.
    Yudin, A. N.
    JETP LETTERS, 2019, 110 (11) : 734 - 738
  • [24] Acoustic spectroscopy of superfluid 3He in aerogel
    Golov, A
    Geller, DA
    Parpia, JM
    Mulders, N
    PHYSICAL REVIEW LETTERS, 1999, 82 (17) : 3492 - 3495
  • [25] Thermodynamic Potential for Superfluid 3He in Aerogel
    Sarosh Ali
    Liangsheng Zhang
    J. A. Sauls
    Journal of Low Temperature Physics, 2011, 162 : 233 - 242
  • [26] Scaling Properties of Superfluid 3He in Aerogel
    Gavin Lawes
    Simon C. J. Kingsley
    Andrei Golov
    Norbert Mulders
    James V. Porto
    Jeevak M. Parpia
    Journal of Low Temperature Physics, 2000, 121 : 567 - 572
  • [27] Scaling properties of superfluid 3He in aerogel
    Lawes, G
    Kingsley, SCJ
    Golov, A
    Mulders, N
    Porto, JV
    Parpia, JM
    JOURNAL OF LOW TEMPERATURE PHYSICS, 2000, 121 (5-6) : 567 - 572
  • [28] Oscillating Nematic Aerogel in Superfluid 3He
    Dmitriev, V. V.
    Kutuzov, M. S.
    Soldatov, A. A.
    Surovtsev, E., V
    Yudin, A. N.
    JETP LETTERS, 2020, 112 (12) : 780 - 785
  • [29] Thermal conductivity of superfluid 3He in aerogel
    Sharma, P
    Sauls, JA
    PHYSICA B-CONDENSED MATTER, 2003, 329 : 313 - 315
  • [30] Robust superfluid phases of 3He in aerogel
    Fomin, IA
    JOURNAL OF LOW TEMPERATURE PHYSICS, 2004, 134 (1-2) : 769 - 773