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Droplet-superfluid compounds in binary bosonic mixtures

Tengstrand, M. Nilsson LU and Reimann, S. M. LU (2022) In Physical Review A 105(3).
Abstract

While quantum fluctuations in binary mixtures of bosonic atoms with short-range interactions can lead to the formation of a self-bound droplet, for equal intracomponent interactions but an unequal number of atoms in the two components, there is an excess part that cannot bind to the droplet. Imposing confinement, as here through periodic boundary conditions in a one-dimensional setting, the droplet becomes amalgamated with a residual condensate. The rotational properties of this compound system reveal simultaneous rigid-body and superfluid behavior in the ground state and uncover that the residual condensate can carry angular momentum even in the absence of vorticity. In contradiction to the intuitive idea that the superfluid fraction... (More)

While quantum fluctuations in binary mixtures of bosonic atoms with short-range interactions can lead to the formation of a self-bound droplet, for equal intracomponent interactions but an unequal number of atoms in the two components, there is an excess part that cannot bind to the droplet. Imposing confinement, as here through periodic boundary conditions in a one-dimensional setting, the droplet becomes amalgamated with a residual condensate. The rotational properties of this compound system reveal simultaneous rigid-body and superfluid behavior in the ground state and uncover that the residual condensate can carry angular momentum even in the absence of vorticity. In contradiction to the intuitive idea that the superfluid fraction of the system would be entirely made up of the excess atoms not bound by the droplet, we find evidence that this fraction is higher than what one would expect in such a picture. Our findings are corroborated by an analysis of the elementary excitations in the system, and shed new light on the coexistence of localization and superfluidity.

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author
and
organization
publishing date
type
Contribution to journal
publication status
published
subject
in
Physical Review A
volume
105
issue
3
article number
033319
publisher
American Physical Society
external identifiers
  • scopus:85127911597
ISSN
2469-9926
DOI
10.1103/PhysRevA.105.033319
language
English
LU publication?
yes
id
712c0b3b-846a-4cdc-97bf-46b1b383fd0d
date added to LUP
2022-06-10 10:31:09
date last changed
2023-11-21 09:43:19
@article{712c0b3b-846a-4cdc-97bf-46b1b383fd0d,
  abstract     = {{<p>While quantum fluctuations in binary mixtures of bosonic atoms with short-range interactions can lead to the formation of a self-bound droplet, for equal intracomponent interactions but an unequal number of atoms in the two components, there is an excess part that cannot bind to the droplet. Imposing confinement, as here through periodic boundary conditions in a one-dimensional setting, the droplet becomes amalgamated with a residual condensate. The rotational properties of this compound system reveal simultaneous rigid-body and superfluid behavior in the ground state and uncover that the residual condensate can carry angular momentum even in the absence of vorticity. In contradiction to the intuitive idea that the superfluid fraction of the system would be entirely made up of the excess atoms not bound by the droplet, we find evidence that this fraction is higher than what one would expect in such a picture. Our findings are corroborated by an analysis of the elementary excitations in the system, and shed new light on the coexistence of localization and superfluidity.</p>}},
  author       = {{Tengstrand, M. Nilsson and Reimann, S. M.}},
  issn         = {{2469-9926}},
  language     = {{eng}},
  number       = {{3}},
  publisher    = {{American Physical Society}},
  series       = {{Physical Review A}},
  title        = {{Droplet-superfluid compounds in binary bosonic mixtures}},
  url          = {{http://dx.doi.org/10.1103/PhysRevA.105.033319}},
  doi          = {{10.1103/PhysRevA.105.033319}},
  volume       = {{105}},
  year         = {{2022}},
}