4.8 Article

Geometric squeezing into the lowest Landau level

期刊

SCIENCE
卷 372, 期 6548, 页码 1318-1322

出版社

AMER ASSOC ADVANCEMENT SCIENCE
DOI: 10.1126/science.aba7202

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资金

  1. NSF [PHY-1734011, PHY-1506019]
  2. Air Force Office of Scientific Research [FA9550-16-1-0324]
  3. Air Force Office of Scientific Research (MURI Quantum Phases of Matter) [FA9550-14-1-0035]
  4. Office of Naval Research [N00014-17-1-2257]
  5. DARPA A-PhI program through ARO [W911NF-19-1-0511]
  6. David and Lucile Packard Foundation
  7. Vannevar Bush Faculty Fellowship
  8. MIT Pappalardo Fellowship
  9. NSF GRFP

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The research establishes the equivalence between particles under rotation and charged particles in a magnetic field, exploring the spatial relationships in the system through quantum mechanics. They successfully implemented squeezing of this geometric quantum uncertainty, achieving significant results in a rotating Bose-Einstein condensate.
The equivalence between particles under rotation and charged particles in a magnetic field relates phenomena as diverse as spinning atomic nuclei, weather patterns, and the quantum Hall effect. For such systems, quantum mechanics dictates that translations along different directions do not commute, implying a Heisenberg uncertainty relation between spatial coordinates. We implement squeezing of this geometric quantum uncertainty, resulting in a rotating Bose-Einstein condensate occupying a single Landau gauge wave function. We resolve the extent of zero-point cyclotron orbits and demonstrate geometric squeezing of the orbits' centers 7 decibels below the standard quantum limit. The condensate attains an angular momentum exceeding 1000 quanta per particle and an interatomic distance comparable to the cyclotron orbit. This offers an alternative route toward strongly correlated bosonic fluids.

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