3.8 Article

Self-Organization in Cold Atoms Mediated by Diffractive Coupling

期刊

ATOMS
卷 9, 期 3, 页码 -

出版社

MDPI
DOI: 10.3390/atoms9030035

关键词

self-organization; cold atoms; interaction mediated by light; single-mirror feedback scheme; optomechanical structures; magnetic ordering; cavity QED

资金

  1. European Union (EU) [721465]
  2. CNRS via the Laboratoire international associe (LIA) 'Solace'
  3. Global Engagement Fund of the University of Strathclyde
  4. John Anderson Research Award from the University of Strathclyde
  5. University Studentship of the University of Strathclyde
  6. Leverhulme Trust
  7. Royal Society (London)
  8. Marie Curie Actions (MSCA) [721465] Funding Source: Marie Curie Actions (MSCA)

向作者/读者索取更多资源

This article discusses the self-organization in cold atoms through light-mediated interactions induced by feedback from a single retro-reflecting mirror. It explores the mechanism of formation of self-organized atomic lattices, the coupling strength parameters, and the requirements for critical interaction strength in different scenarios. It also discusses the operating modes on different degrees of freedom, possible research extensions, and connections to other related topics.
This article discusses self-organization in cold atoms via light-mediated interactions induced by feedback from a single retro-reflecting mirror. Diffractive dephasing between the pump beam and the spontaneous sidebands selects the lattice period. Spontaneous breaking of the rotational and translational symmetry occur in the 2D plane transverse to the pump. We elucidate how diffractive ripples couple sites on the self-induced atomic lattice. The nonlinear phase shift of the atomic cloud imprinted onto the optical beam is the parameter determining coupling strength. The interaction can be tailored to operate either on external degrees of freedom leading to atomic crystallization for thermal atoms and supersolids for a quantum degenerate gas, or on internal degrees of freedom like populations of the excited state or Zeeman sublevels. Using the light polarization degrees of freedom on the Poincare sphere (helicity and polarization direction), specific irreducible tensor components of the atomic Zeeman states can be coupled leading to spontaneous magnetic ordering of states of dipolar and quadrupolar nature. The requirements for critical interaction strength are compared for the different situations. Connections and extensions to longitudinally pumped cavities, counterpropagating beam schemes and the CARL instability are discussed.

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