High-resolution imaging of Rydberg atoms in optical lattices using an aspheric-lens objective in vacuum

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Abstract

We present a high-resolution, simple, and versatile system for imaging ultracold Rydberg atoms in optical lattices. The imaging objective is a single aspheric lens [with a working distance of 20.6 mm and a numerical aperture (NA) of 0.51] placed inside the vacuum chamber. Adopting a large-working-distance lens leaves room for electrodes and electrostatic shields to control electric fields around Rydberg atoms. With this setup, we achieve a Rayleigh resolution of 1.10 μm or 1.41λ (λ = 780 nm), limited by the NA of the aspheric lens. For systems of highly excited Rydberg states with blockade radii greater than a few μm, the resolution achieved is sufficient for studying many physical processes of interest.

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Shen, C., Chen, C., Wu, X. L., Dong, S., Cui, Y., You, L., & Tey, M. K. (2020). High-resolution imaging of Rydberg atoms in optical lattices using an aspheric-lens objective in vacuum. Review of Scientific Instruments, 91(6). https://doi.org/10.1063/5.0006026

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