Experimental Realization of One-Dimensional Helium

IF 1.4 3区 物理与天体物理 Q4 PHYSICS, APPLIED
Paul E. Sokol, Adrian Del Maestro, Sutirtha Paul, Nathan Nichols, Timothy Prisk, Garfield Warren
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引用次数: 0

Abstract

As the spatial dimension is lowered, locally stabilizing interactions are reduced, leading to the emergence of strongly fluctuating phases of matter without classical analogues. Realizing 1D platforms has been elusive, due to their inherent lack of stability, with a few notable exceptions such as spin chains and ultracold low-density gasses. The inability of such systems to exhibit long range order is essential to their universal description in terms of the Tomonaga-Luttinger liquid theory. Here we report on the experimental observation of a one-dimensional quantum liquid of \(^4\)He using nanoengineering to confine it within a porous material preplated with a noble gas to enhance dimensional reduction. The resulting excitations of the confined \(^4\)He, confirmed by neutron scattering, are qualitatively different than three- and two-dimensional superfluid helium, and consistent with Quantum Monte Carlo calculations. The results can be analyzed in terms of a mobile impurity in an otherwise linear Luttinger liquid allowing for the extraction of the microscopic parameters describing the emergent quantum liquid.

一维氦的实验实现
随着空间维数的降低,局部稳定相互作用减少,导致物质出现没有经典类似物的强烈波动相。由于1D平台本身缺乏稳定性,除了一些明显的例外,如自旋链和超冷低密度气体,实现1D平台一直是难以捉摸的。这种系统不能表现出长范围有序,这是托莫纳加-卢廷格液体理论对它们的普遍描述所必需的。本文报道了一维量子液体\(^4\) He的实验观察,利用纳米工程将其限制在预先镀有惰性气体的多孔材料中以增强降维。中子散射证实,受约束的\(^4\) He的激发在质量上不同于三维和二维超流氦,并且与量子蒙特卡罗计算一致。结果可以根据在线性吕丁格液体中的移动杂质进行分析,从而允许提取描述涌现量子液体的微观参数。
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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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