Lattice Light Shift Evaluations In a Dual-Ensemble Yb Optical Lattice Clock

Fuente: arXiv
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Main Authors: Bothwell, Tobias, Hunt, Benjamin D., Siegel, Jacob L., Hassan, Youssef S., Grogan, Tanner, Kobayashi, Takumi, Gibble, Kurt, Porsev, Sergey G., Safronova, Marianna S., Brown, Roger C., Beloy, Kyle, Ludlow, Andrew D.
Format: Preprint
Published: 2024
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author Bothwell, Tobias
Hunt, Benjamin D.
Siegel, Jacob L.
Hassan, Youssef S.
Grogan, Tanner
Kobayashi, Takumi
Gibble, Kurt
Porsev, Sergey G.
Safronova, Marianna S.
Brown, Roger C.
Beloy, Kyle
Ludlow, Andrew D.
author_facet Bothwell, Tobias
Hunt, Benjamin D.
Siegel, Jacob L.
Hassan, Youssef S.
Grogan, Tanner
Kobayashi, Takumi
Gibble, Kurt
Porsev, Sergey G.
Safronova, Marianna S.
Brown, Roger C.
Beloy, Kyle
Ludlow, Andrew D.
contents In state-of-the-art optical lattice clocks, beyond-electric-dipole polarizability terms lead to a break-down of magic wavelength trapping. In this Letter, we report a novel approach to evaluate lattice light shifts, specifically addressing recent discrepancies in the atomic multipolarizability term between experimental techniques and theoretical calculations. We combine imaging and multi-ensemble techniques to evaluate lattice light shift atomic coefficients, leveraging comparisons in a dual-ensemble lattice clock to rapidly evaluate differential frequency shifts. Further, we demonstrate application of a running wave field to probe both the multipolarizability and hyperpolarizability coefficients, establishing a new technique for future lattice light shift evaluations.
format Preprint
id arxiv_https___arxiv_org_abs_2409_10782
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Lattice Light Shift Evaluations In a Dual-Ensemble Yb Optical Lattice Clock
Bothwell, Tobias
Hunt, Benjamin D.
Siegel, Jacob L.
Hassan, Youssef S.
Grogan, Tanner
Kobayashi, Takumi
Gibble, Kurt
Porsev, Sergey G.
Safronova, Marianna S.
Brown, Roger C.
Beloy, Kyle
Ludlow, Andrew D.
Atomic Physics
Quantum Physics
In state-of-the-art optical lattice clocks, beyond-electric-dipole polarizability terms lead to a break-down of magic wavelength trapping. In this Letter, we report a novel approach to evaluate lattice light shifts, specifically addressing recent discrepancies in the atomic multipolarizability term between experimental techniques and theoretical calculations. We combine imaging and multi-ensemble techniques to evaluate lattice light shift atomic coefficients, leveraging comparisons in a dual-ensemble lattice clock to rapidly evaluate differential frequency shifts. Further, we demonstrate application of a running wave field to probe both the multipolarizability and hyperpolarizability coefficients, establishing a new technique for future lattice light shift evaluations.
title Lattice Light Shift Evaluations In a Dual-Ensemble Yb Optical Lattice Clock
topic Atomic Physics
Quantum Physics
url https://arxiv.org/abs/2409.10782