English

Tools for designing atom interferometers in a microgravity environment

Quantum Gases 2019-04-24 v1

Abstract

We present a variational model suitable for rapid preliminary design of atom interferometers in a microgravity environment. The model approximates the solution of the 3D rotating--frame Gross--Pitaevskii equation (GPE) as the sum of Nc Gaussian clouds. Each Gaussian cloud is assumed to have time--dependent center positions, widths, and linear and quadratic phase parameters. We applied the Lagrangian Variational Method (LVM) with this trial wave function to derive equations of motion for these parameters that can be adapted to any external potential. We also present a 1D version of this variational model. As an example we apply the model to a 1D atom interferometry scheme for measuring Newton's gravitational constant, G, in a microgravity environment. We show how the LVM model can (1) constrain the experimental parameter space size, (2) show how the value of G can be obtained from the experimental conditions and interference pattern characteristics, and (3) show how to improve the sensitivity of the measurement and construct a preliminary error budget.

Keywords

Cite

@article{arxiv.1903.04028,
  title  = {Tools for designing atom interferometers in a microgravity environment},
  author = {Elizabeth Ashwood and Ed Wesley Wells and Doga Murat Kurkcuoglu and Robert Colson Sapp and Charles W Clark and Mark Edwards},
  journal= {arXiv preprint arXiv:1903.04028},
  year   = {2019}
}

Comments

19 pages, 4 figures submitted to Physical Review A

R2 v1 2026-06-23T08:03:38.630Z