Superclimbing modes in transverse quantum fluids: signature statistical and dynamical features

Fuente: arXiv
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Hauptverfasser: Zhang, Chao, Boninsegni, Massimo, Kuklov, Anatoly, Prokof'ev, Nikolay, Svistunov, Boris
Format: Preprint
Veröffentlicht: 2024
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author Zhang, Chao
Boninsegni, Massimo
Kuklov, Anatoly
Prokof'ev, Nikolay
Svistunov, Boris
author_facet Zhang, Chao
Boninsegni, Massimo
Kuklov, Anatoly
Prokof'ev, Nikolay
Svistunov, Boris
contents Superclimbing modes are hallmark degrees of freedom of transverse quantum fluids describing wide superfluid one-dimensional interfaces and/or edges with negligible Peierls barrier. We report the first direct numeric evidence of quantum shape fluctuations -- caused by superclimbing modes -- in simple lattice models, as well as at the free edge of an incomplete solid monolayer of $^4$He adsorbed on graphite. Our data unambiguously reveals the defining feature of the superclimbing modes -- canonical conjugation of the edge displacement field to the field of superfluid phase -- and its unexpected implication, i.e., that superfluid stiffness can be inferred from density snapshots.
format Preprint
id arxiv_https___arxiv_org_abs_2404_03465
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Superclimbing modes in transverse quantum fluids: signature statistical and dynamical features
Zhang, Chao
Boninsegni, Massimo
Kuklov, Anatoly
Prokof'ev, Nikolay
Svistunov, Boris
Other Condensed Matter
Superclimbing modes are hallmark degrees of freedom of transverse quantum fluids describing wide superfluid one-dimensional interfaces and/or edges with negligible Peierls barrier. We report the first direct numeric evidence of quantum shape fluctuations -- caused by superclimbing modes -- in simple lattice models, as well as at the free edge of an incomplete solid monolayer of $^4$He adsorbed on graphite. Our data unambiguously reveals the defining feature of the superclimbing modes -- canonical conjugation of the edge displacement field to the field of superfluid phase -- and its unexpected implication, i.e., that superfluid stiffness can be inferred from density snapshots.
title Superclimbing modes in transverse quantum fluids: signature statistical and dynamical features
topic Other Condensed Matter
url https://arxiv.org/abs/2404.03465