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Quantum-gas microscopy and Talbot interferometry of the Bose-glass phase

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Abstract

Disordered potentials fundamentally affect transport and coherence in quantum systems, giving rise to a Bose-glass phase in interacting bosonic systems—an insulating yet compressible phase lacking long-range coherence. Directly measuring a reduced coherence length of the Bose glass has been a outstanding challenge. We address this by employing Talbot interferometry combined with single-atom-resolved detection in a quantum-gas microscope. Using ultracold bosonic atoms in a two-dimensional lattice with site-resolved, reproducible disorder, we identify the Bose-glass phase through in situ density distributions and particle-number fluctuations, quantified via the Edwards-Anderson parameter, and through the visibility of interference patterns after time of flight. By driving the system across the Bose-glass phase, we further observe signatures of nonergodic dynamics. Our studies provide a starting point to further explore disordered systems in and out of equilibrium, and are relevant for understanding the dynamics and stability of disordered and glasslike quantum states in solid-state systems.
Original languageEnglish
Article number043303
Number of pages9
JournalPhysical Review A
Volume113
Issue number4
DOIs
Publication statusPublished - 3 Apr 2026

Funding

We acknowledge support by the Engineering and Physical Sciences Research Council (EPSRC) through the Quantum Technology Hub in Quantum Computing and Simulation (QCS) (Grant No. EP/T001062/1), the Hub for Quantum Computing via Integrated and Interconnected Implementations (QCI3) (Grant No. EP/Z53318X/1), the Programme Grant “Quantum Advantage in Quantitative Quantum Simulation” (QQQS) (Grant No. EP/Y01510X/1), and the Doctoral Training Partnership Grant No. EP/W524670/1.

Keywords

  • Bose-glass phase
  • talbot interferometry
  • bosonic atoms
  • optical lattice
  • quantum gas microscopy

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