Abstract
The use of multilevel quantum information carriers, also known as qudits, has attracted significant interest as a way of further scaling quantum computing devices. However, such multilevel systems usually express shorter coherence time than their two-level counterparts, which limits their computational potential. We thus propose and experimentally demonstrate two approaches for realizing the continuous dynamical decoupling of magnetic-sensitive states with m F = ±1 for qudits encoded in optical transition of trapped 171 Yb + ions. We improve the coherence time of qudit levels by an order of magnitude (more than 9 ms) without any magnetic shielding, revealing the potential advantage of the symmetry of the 171 Yb + ion energy structure for counteracting magnetic field noise. Our results are a step toward realizing qudit-based algorithms using trapped ions.
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CITATION STYLE
Zalivako, I. V., Borisenko, A. S., Semerikov, I. A., Korolkov, A. E., Sidorov, P. L., Galstyan, K. P., … Kolachevsky, N. N. (2023). Continuous dynamical decoupling of optical 171Yb+ qudits with radiofrequency fields. Frontiers in Quantum Science and Technology, 2. https://doi.org/10.3389/frqst.2023.1228208
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