English

Excited-Band Bloch Oscillations for Precision Atom Interferometry

Atomic Physics 2020-05-14 v2

Abstract

We propose and demonstrate a method to increase the momentum separation between the arms of an atom interferometer and thus its area and measurement precision, by using Bloch oscillations (BOs) in an excited band of a pulsed optical standing wave lattice. Using excited bands allows us to operate at particular "magic" depths, where high momentum transfer efficiency (>99.4%>99.4\% per k\hbar k, where k\hbar k is the photon momentum) is maintained while minimizing the lattice-induced phase fluctuations (<1<1\,milliradian per k\hbar k) that are unavoidable in ground-band BOs. We apply this method to demonstrate interferometry with up to 40k\hbar k momenta supplied by BOs. We discuss extensions of this technique to larger momentum transfer and adaptations towards metrological applications of atom interferometry such as a measurement of the fine-structure constant.

Keywords

Cite

@article{arxiv.1912.08902,
  title  = {Excited-Band Bloch Oscillations for Precision Atom Interferometry},
  author = {Katherine E. McAlpine and Daniel Gochnauer and Subhadeep Gupta},
  journal= {arXiv preprint arXiv:1912.08902},
  year   = {2020}
}

Comments

8 pages, 6 figures

R2 v1 2026-06-23T12:50:22.139Z