Optical Ion Clock with Engineered Immunity to Motion-Induced Frequency Shifts
Abstract
Spectroscopic frequency shifts due to residual motion of the probed atoms significantly contribute to the uncertainty budgets of state-of-the-art optical ion clocks. For clock transitions with second-order Doppler and quadratic Stark shifts of opposite signs, it is possible to configure electrodynamic ion confinement such that these two shift effects become anticorrelated causing zero net shift. Here, we introduce a spectroscopic interrogation protocol which leads, for systems with unknown and v...
Description / Details
Spectroscopic frequency shifts due to residual motion of the probed atoms significantly contribute to the uncertainty budgets of state-of-the-art optical ion clocks. For clock transitions with second-order Doppler and quadratic Stark shifts of opposite signs, it is possible to configure electrodynamic ion confinement such that these two shift effects become anticorrelated causing zero net shift. Here, we introduce a spectroscopic interrogation protocol which leads, for systems with unknown and varying motional energy gain rates, to first-order auto-suppression of corresponding frequency shifts without requiring the opposite-sign configuration. We experimentally demonstrate the proposed method on a new ytterbium ion optical clock probing the 467 nm electric octupole (E3) transition, where the combined fractional uncertainty contribution from motion-induced frequency shifts is reduced from to . An interleaved optical frequency ratio measurement against ytterbium's electric quadrupole transition (E2) at 435 nm delivers an E3/E2 frequency ratio of . Combined with previously published ratio data this leads to a limit for a potential fractional temporal variation of the fine-structure constant of yr, in agreement with existing bounds.
Source: arXiv:2609.26775v1 - http://arxiv.org/abs/2609.26775v1 PDF: https://arxiv.org/pdf/2609.26775v1 Original Link: http://arxiv.org/abs/2609.26775v1
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Sep 23, 2026
Quantum Computing
Quantum Physics
0