English

Enhancement of Ultracold Molecule Formation Using Shaped Nanosecond Frequency Chirps

Atomic Physics 2016-02-26 v1

Abstract

We demonstrate that judicious shaping of a nanosecond-time-scale frequency chirp can dramatically enhance the formation rate of ultracold 87^{87}Rb2_{2} molecules. Starting with ultracold 87^{87}Rb atoms, we apply pulses of frequency-chirped light to first photoassociate the atoms into excited molecules and then, later in the chirp, de-excite these molecules into a high vibrational level of the lowest triplet state, a3Σu+a \, ^{3}\Sigma_{u}^{+}. The enhancing chirp shape passes through the absorption and stimulated emission transitions relatively slowly, thus increasing their adiabaticity, but jumps quickly between them to minimize the effects of spontaneous emission. Comparisons with quantum simulations for various chirp shapes support this enhancement mechanism.

Keywords

Cite

@article{arxiv.1602.08026,
  title  = {Enhancement of Ultracold Molecule Formation Using Shaped Nanosecond Frequency Chirps},
  author = {J. L. Carini and S. Kallush and R. Kosloff and P. L. Gould},
  journal= {arXiv preprint arXiv:1602.08026},
  year   = {2016}
}