Rotating Curved Spacetime Signatures from a Giant Quantum Vortex

Fuente: arXiv
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Auteurs principaux: Švančara, Patrik, Smaniotto, Pietro, Solidoro, Leonardo, MacDonald, James F., Patrick, Sam, Gregory, Ruth, Barenghi, Carlo F., Weinfurtner, Silke
Format: Preprint
Publié: 2023
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author Švančara, Patrik
Smaniotto, Pietro
Solidoro, Leonardo
MacDonald, James F.
Patrick, Sam
Gregory, Ruth
Barenghi, Carlo F.
Weinfurtner, Silke
author_facet Švančara, Patrik
Smaniotto, Pietro
Solidoro, Leonardo
MacDonald, James F.
Patrick, Sam
Gregory, Ruth
Barenghi, Carlo F.
Weinfurtner, Silke
contents Gravity simulators are laboratory systems where small excitations like sound or surface waves behave as fields propagating on a curved spacetime geometry. The analogy between gravity and fluids requires vanishing viscosity, a feature naturally realised in superfluids like liquid helium or cold atomic clouds. Such systems have been successful in verifying key predictions of quantum field theory in curved spacetime. In particular, quantum simulations of rotating curved spacetimes indicative of astrophysical black holes require the realisation of an extensive vortex flow in superfluid systems. Here we demonstrate that despite the inherent instability of multiply quantised vortices, a stationary giant quantum vortex can be stabilised in superfluid $^4$He. Its compact core carries thousands of circulation quanta, prevailing over current limitations in other physical systems such as magnons, atomic clouds and polaritons. We introduce a minimally invasive way to characterise the vortex flow by exploiting the interaction of micrometre-scale waves on the superfluid interface with the background velocity field. Intricate wave-vortex interactions, including the detection of bound states and distinctive analogue black hole ringdown signatures, have been observed. These results open new avenues to explore quantum-to-classical vortex transitions and utilise superfluid helium as a finite temperature quantum field theory simulator for rotating curved spacetimes.
format Preprint
id arxiv_https___arxiv_org_abs_2308_10773
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Rotating Curved Spacetime Signatures from a Giant Quantum Vortex
Švančara, Patrik
Smaniotto, Pietro
Solidoro, Leonardo
MacDonald, James F.
Patrick, Sam
Gregory, Ruth
Barenghi, Carlo F.
Weinfurtner, Silke
General Relativity and Quantum Cosmology
Fluid Dynamics
Gravity simulators are laboratory systems where small excitations like sound or surface waves behave as fields propagating on a curved spacetime geometry. The analogy between gravity and fluids requires vanishing viscosity, a feature naturally realised in superfluids like liquid helium or cold atomic clouds. Such systems have been successful in verifying key predictions of quantum field theory in curved spacetime. In particular, quantum simulations of rotating curved spacetimes indicative of astrophysical black holes require the realisation of an extensive vortex flow in superfluid systems. Here we demonstrate that despite the inherent instability of multiply quantised vortices, a stationary giant quantum vortex can be stabilised in superfluid $^4$He. Its compact core carries thousands of circulation quanta, prevailing over current limitations in other physical systems such as magnons, atomic clouds and polaritons. We introduce a minimally invasive way to characterise the vortex flow by exploiting the interaction of micrometre-scale waves on the superfluid interface with the background velocity field. Intricate wave-vortex interactions, including the detection of bound states and distinctive analogue black hole ringdown signatures, have been observed. These results open new avenues to explore quantum-to-classical vortex transitions and utilise superfluid helium as a finite temperature quantum field theory simulator for rotating curved spacetimes.
title Rotating Curved Spacetime Signatures from a Giant Quantum Vortex
topic General Relativity and Quantum Cosmology
Fluid Dynamics
url https://arxiv.org/abs/2308.10773