• DocumentCode
    3189541
  • Title

    Slowing cold molecules with pulsed optical lattices

  • Author

    Dong, Guangjiong ; Lu, Weiping ; Barker, P.F. ; Shneider, M.N.

  • Author_Institution
    Sch. of Eng. & Phys. Sci., Heriot-Watt Univ., Edinburgh, UK
  • fYear
    2003
  • fDate
    22-27 June 2003
  • Firstpage
    302
  • Abstract
    This work presents the proposed schemes for decelerating cold molecules created in pulsed supersonic expansions using pulsed optical lattices. The first scheme relies on the application of a decelerating optical lattice with a dipole-potential well depth of approximately 1 K, created by rapidly chirping medium-intensity fields in the 10 W/cm2 range. This scheme is an optical analog of the Start decelerator that has been successfully used to slow a range of polar molecules. A significant fraction (about 10%) of the very heavy I2 molecules in an Ar buffer gas is shown to be slowed by using this method over sub-microsecond time scales. In the second technique, an optical lattice with larger well depth in the 100 K range travelling at half the supersonic beam velocity is used to trap a significant fraction of the cold, high-velocity molecules. This technique is developed based on the property of periodic motion of the trapped molecules in the optical lattice; the molecules reverse their initial (relative) velocities in the lattice reference frame after half a period. Using this method the cold molecules can be transferred from high speed to zero velocity on nanosecond time scales. As an example, 33% of a CO molecule beam (1 K) with a velocity of 230 m/s is slowed utilising optical intensities of less than 1012 W/cm2.
  • Keywords
    laser cooling; potential energy functions; radiation pressure; 230 m/s; CO; cold molecules slowing; dipole-potential well depth; pulsed optical lattices; pulsed supersonic expansions; rapidly chirping medium-intensity fields; trapped molecules periodic motion; Charge carrier processes; Chirp; Electronics cooling; High speed optical techniques; Ionization; Laser beams; Lattices; Optical buffering; Optical pulses; Space technology;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Quantum Electronics Conference, 2003. EQEC '03. European
  • Print_ISBN
    0-7803-7733-8
  • Type

    conf

  • DOI
    10.1109/EQEC.2003.1314159
  • Filename
    1314159