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Atkočius, Vilius; Johnson, Jamie; Morrison, Rhys; Gentile, Fabio; Mishra, Charu; Mellor, Christopher J; Fernholz, Thomas
State-dependent transport in RF-dressed atom chip potentials Journal Article
In: AVS Quantum Sci., vol. 7, no. 2, 2025.
Abstract | Links | Altmetric | Tags: ring traps, ultracold atoms
@article{Atkocius2025-tg,
title = {State-dependent transport in RF-dressed atom chip potentials},
author = {Vilius Atko\v{c}ius and Jamie Johnson and Rhys Morrison and Fabio Gentile and Charu Mishra and Christopher J Mellor and Thomas Fernholz},
doi = {10.1116/5.0241484},
year = {2025},
date = {2025-06-01},
urldate = {2025-06-01},
journal = {AVS Quantum Sci.},
volume = {7},
number = {2},
publisher = {American Vacuum Society},
abstract = {The manipulation of ultracold atoms in radio-frequency
(RF)-dressed potentials offers unique advantages over static
magnetic traps, such as the ability to create more complex
potential landscapes, better control of atomic states, and
increased robustness to environmental noise. Among the
accessible geometries, ring traps are particularly promising for
atomic Sagnac interferometers, which can be used to measure
rotational motion with high sensitivity. Here, the authors
demonstrate the state-dependent transport of atoms in an
RF-dressed ring trap on an atom chip. By exploiting the
polarization-dependent coupling of RF fields to different atomic
hyperfine states, the authors achieve controlled transport of
atoms in opposite directions. This approach targets the
development of compact, high-precision devices for applications
in inertial navigation and rotation sensing.},
keywords = {ring traps, ultracold atoms},
pubstate = {published},
tppubtype = {article}
}
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