English

Driving rotational transitions in molecules on a chip

Atomic Physics 2015-03-17 v1

Abstract

Polar molecules in selected quantum states can be guided, decelerated, and trapped using electric fields created by microstructured electrodes on a chip. Here we explore how transitions between two of these quantum states can be induced while the molecules are on the chip. We use CO (a 3-Pi(1), v=0) molecules, prepared in the J=1 rotational level, and induce the J=2 <-- J=1 rotational transition with narrow-band sub-THz (mm-wave) radiation. First, the mm-wave source is characterized using CO molecules in a freely propagating molecular beam, and both Rabi cycling and rapid adiabatic passage are examined. Then, we demonstrate that the mm-wave radiation can be coupled to CO molecules that are less than 50 micron above the chip. Finally, CO molecules are guided in the J=1 level to the center of the chip where they are pumped to the J=2 level, recaptured, and guided off the chip.

Keywords

Cite

@article{arxiv.1012.1259,
  title  = {Driving rotational transitions in molecules on a chip},
  author = {Gabriele Santambrogio and Samuel A. Meek and Mark J. Abel and Liam M. Duffy and Gerard Meijer},
  journal= {arXiv preprint arXiv:1012.1259},
  year   = {2015}
}

Comments

consists of 9 pages and 7 figures

R2 v1 2026-06-21T16:54:16.233Z