TY - JOUR
T1 - Metasurface holographic optical traps for ultracold atoms
AU - Huang, Xiaoyan
AU - Yuan, Weijun
AU - Holman, Aaron
AU - Kwon, Minho
AU - Masson, Stuart J.
AU - Gutierrez-Jauregui, Ricardo
AU - Asenjo-Garcia, Ana
AU - Will, Sebastian
AU - Yu, Nanfang
N1 - Publisher Copyright:
© 2023
PY - 2023/5/1
Y1 - 2023/5/1
N2 - We propose metasurface holograms as a novel platform to generate optical trap arrays for cold atoms with high quality, efficiency, and thermal stability. We developed design and fabrication methods to create dielectric, phase-only metasurface holograms based on titanium dioxide. We experimentally demonstrated optical trap arrays of various geometries, including periodic and aperiodic configurations with dimensions ranging from 1D to 3D and up to a few hundred trap sites. We characterized the performance of the holographic metasurfaces in terms of the positioning accuracy, size and intensity uniformity of the generated traps, and power handling capability of the dielectric metasurfaces. Our proposed platform has great potential for enabling fundamental studies of quantum many-body physics, and quantum simulation and computation tasks. The compact form factor, passive nature, good power handling capability, and scalability of generating high-quality, large-scale arrays also make the metasurface platform uniquely suitable for realizing field-deployable devices and systems based on cold atoms.
AB - We propose metasurface holograms as a novel platform to generate optical trap arrays for cold atoms with high quality, efficiency, and thermal stability. We developed design and fabrication methods to create dielectric, phase-only metasurface holograms based on titanium dioxide. We experimentally demonstrated optical trap arrays of various geometries, including periodic and aperiodic configurations with dimensions ranging from 1D to 3D and up to a few hundred trap sites. We characterized the performance of the holographic metasurfaces in terms of the positioning accuracy, size and intensity uniformity of the generated traps, and power handling capability of the dielectric metasurfaces. Our proposed platform has great potential for enabling fundamental studies of quantum many-body physics, and quantum simulation and computation tasks. The compact form factor, passive nature, good power handling capability, and scalability of generating high-quality, large-scale arrays also make the metasurface platform uniquely suitable for realizing field-deployable devices and systems based on cold atoms.
U2 - 10.1016/j.pquantelec.2023.100470
DO - 10.1016/j.pquantelec.2023.100470
M3 - Review article
AN - SCOPUS:85154532930
SN - 0079-6727
VL - 89
JO - Progress in Quantum Electronics
JF - Progress in Quantum Electronics
M1 - 100470
ER -