Published June 2022 | Version Published + Submitted
Journal Article Open

Quantum membrane phases in synthetic lattices of cold molecules or Rydberg atoms

  • 1. ROR icon University of California, Davis
  • 2. ROR icon California Institute of Technology
  • 3. ROR icon Louisiana State University Health Sciences Center New Orleans
  • 4. ROR icon Rice University

Abstract

We calculate properties of dipolar interacting ultracold molecules or Rydberg atoms in a semisynthetic three-dimensional configuration—one synthetic dimension plus a two-dimensional real-space optical lattice or periodic microtrap array—using the stochastic Green's function quantum Monte Carlo method. Through a calculation of thermodynamic quantities and appropriate correlation functions, along with their finite-size scalings, we show that there is a second-order transition to a low-temperature phase in which two-dimensional "sheets" form in the synthetic dimension of internal rotational or electronic states of the molecules or Rydberg atoms, respectively. Simulations for different values of the interaction V, which acts between atoms or molecules that are adjacent both in real and synthetic space, allow us to compute a phase diagram. We find a finite-temperature transition at sufficiently large V as well as a quantum phase transition—a critical value V꜀ below which the transition temperature vanishes.

Additional Information

© 2022 American Physical Society. (Received 23 February 2022; accepted 1 June 2022; published 21 June 2022) The work of C.H.F. and R.T.S. was supported by the grant DOE-DE-SC0014671 funded by the U.S. Department of Energy, Office of Science. We thank Sohail Dasgupta and Bryce Gadway for useful conversations. H.M. was supported by the Research Experience for Undergraduates program (NSF grant PHY-1852581) and by the Caltech Applied Physics Department Yariv/Blauvelt Fellowship. K.H. was supported by the Welch Foundation Grant No. C1872, the National Science Foundation Grant No. PHY1848304, and also benefited from discussions at the KITP, which was supported in part by the National Science Foundation under Grant No. NSF PHY-1748958.

Attached Files

Published - PhysRevA.105.063320.pdf

Submitted - 2202.08540.pdf

Files

2202.08540.pdf

Files (2.4 MB)

Name Size
md5:5e41e7c598fdd1faf7e8cef3c212219b
1.4 MB Preview Download
md5:3ef007cdf5fb93dc1506bbf11bc504f7
1.1 MB Preview Download

Additional details

Identifiers

Eprint ID
115628
Resolver ID
CaltechAUTHORS:20220715-332436000

Related works

Funding

Department of Energy (DOE)
DE-SC0014671
NSF
PHY-1852581
Caltech
Robert A. Welch Foundation
C1872
NSF
PHY-1848304
NSF
PHY-1748958

Dates

Created
2022-07-18
Created from EPrint's datestamp field
Updated
2022-07-18
Created from EPrint's last_modified field