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Spectroscopy and Modeling of ^{171}Yb Rydberg States for High-Fidelity Two-Qubit Gates

Authors :
Michael Peper
Yiyi Li
Daniel Y. Knapp
Mila Bileska
Shuo Ma
Genyue Liu
Pai Peng
Bichen Zhang
Sebastian P. Horvath
Alex P. Burgers
Jeff D. Thompson
Source :
Physical Review X, Vol 15, Iss 1, p 011009 (2025)
Publication Year :
2025
Publisher :
American Physical Society, 2025.

Abstract

Highly excited Rydberg states and their interactions play an important role in quantum computing and simulation. These properties can be predicted accurately for alkali atoms with simple Rydberg level structures. However, an extension of these methods to more complex atoms such as alkaline-earth atoms has not been demonstrated or experimentally validated. Here, we present multichannel quantum defect models for highly excited ^{174}Yb and ^{171}Yb Rydberg states with L≤2. The models are developed using a combination of existing literature data and new, high-precision laser and microwave spectroscopy in an atomic beam, and validated by detailed comparison with experimentally measured Stark shifts and magnetic moments. We then use these models to compute interaction potentials between two Yb atoms, and find excellent agreement with direct measurements in an optical tweezer array. From the computed interaction potential, we identify an anomalous Förster resonance that likely degraded the fidelity of previous entangling gates in ^{171}Yb using F=3/2 Rydberg states. We then identify a more suitable F=1/2 state, and achieve a state-of-the-art controlled-z gate fidelity of F=0.994(1), with the remaining error fully explained by known sources. This work establishes a solid foundation for the continued development of quantum computing, simulation, and entanglement-enhanced metrology with Yb neutral atom arrays.

Subjects

Subjects :
Physics
QC1-999

Details

Language :
English
ISSN :
21603308
Volume :
15
Issue :
1
Database :
Directory of Open Access Journals
Journal :
Physical Review X
Publication Type :
Academic Journal
Accession number :
edsdoj.b7004c35b8154425b7ab7f16bcd8eb5c
Document Type :
article
Full Text :
https://doi.org/10.1103/PhysRevX.15.011009