• DocumentCode
    1944547
  • Title

    Continuous evaporative loading of an atom trap using an optically guided atomic fountain

  • Author

    Davies, H.J. ; Szymaniec, Krzysztof ; Adams, C.S.

  • Author_Institution
    Dept. of Phys., Durham Univ., UK
  • fYear
    1998
  • fDate
    8-8 May 1998
  • Firstpage
    118
  • Lastpage
    119
  • Abstract
    Summary form only given.Laser cooling, where excess kinetic energy is extracted by a photon, is ideally suited to loading atoms into a trap; however, quantization and reabsorption of light, limit the maximum phase-space density attainable. A sequence of laser cooling followed by evaporative cooling, where the excess energy is extracted by escaping atoms, may be used to overcome the laser cooling limit; however, such a scheme dramatically reduces the number of trapped atoms. A remaining challenge is to achieve continuous loading without the phase-space density limit imposed by near-resonant light. We consider continuous evaporative loading of a magnetic trap using a magnetically insensitive buffer gas. The key is to deliver sufficient cold atoms to the trapping region such that the steady-state trap population is large. To achieve this we employ an atomic fountain guided by a far-off resonant laser beam. At the apex of the fountain, the density can be a factor of 30-40 higher than in a magneto-optical trapping region, and importantly, the atoms are spatially separated from the region of resonant laser light. We propose to use this high-density region as a reservoir for continuous evaporative loading of a trap.
  • Keywords
    atom-atom collisions; evaporation; laser cooling; radiation pressure; Monte Carlo simulation; atom trap; attainable phase-space density; cold atoms; collision process; continuous evaporative loading; excess kinetic energy; far-off resonant laser beam; high-density region; laser cooling; magnetic trap; optically guided atomic fountain; steady-state trap population; Atom lasers; Atom optics; Atomic beams; Charge carrier processes; Cooling; Gas lasers; Kinetic energy; Magnetic resonance; Magnetic separation; Optical buffering;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Quantum Electronics Conference, 1998. IQEC 98. Technical Digest. Summaries of papers presented at the International
  • Conference_Location
    San Francisco, CA, USA
  • Print_ISBN
    1-55752-541-2
  • Type

    conf

  • DOI
    10.1109/IQEC.1998.680249
  • Filename
    680249