English

Optimizing the efficiency of evaporative cooling in optical dipole traps

Quantum Gases 2013-05-21 v3 Atomic Physics

Abstract

We present a combined computational and experimental study to optimize the efficiency of evaporative cooling for atoms in optical dipole traps. By employing a kinetic model of evaporation, we provide a strategy for determining the optimal relation between atom temperature, trap depth, and average trap frequency during evaporation given experimental initial conditions. We then experimentally implement a highly efficient evaporation process in an optical dipole trap, showing excellent agreement between the theory and experiment. This method has allowed the creation of pure Bose-Einstein condensates of 87^{87}Rb with 2×104\times 10^4 atoms starting from only 5×1055\times 10^5 atoms initially loaded in the optical dipole trap, achieving an evaporation efficiency, γeff\gamma_{eff}, of 4.0 during evaporation.

Keywords

Cite

@article{arxiv.1211.3469,
  title  = {Optimizing the efficiency of evaporative cooling in optical dipole traps},
  author = {Abraham J. Olson and Robert J. Niffenegger and Yong P. Chen},
  journal= {arXiv preprint arXiv:1211.3469},
  year   = {2013}
}

Comments

Update and corrections from version 2