Robust multi-mode superconducting circuit optimized for quantum information processing

Fuente: arXiv
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Main Authors: García-Azorín, P., Cárdenas-López, F. A., Huber, G. B. P., Romero, G., Werninghaus, M., Motzoi, F., Filipp, S., Sanz, M.
Format: Preprint
Published: 2024
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author García-Azorín, P.
Cárdenas-López, F. A.
Huber, G. B. P.
Romero, G.
Werninghaus, M.
Motzoi, F.
Filipp, S.
Sanz, M.
author_facet García-Azorín, P.
Cárdenas-López, F. A.
Huber, G. B. P.
Romero, G.
Werninghaus, M.
Motzoi, F.
Filipp, S.
Sanz, M.
contents Multi-mode superconducting circuits offer a promising platform for engineering robust systems for quantum computation. Previous studies indicate that single-mode devices cannot be engineered to simultaneously exhibit resilience against multiple decoherence sources due to conflicting requirements. In contrast, multi-mode systems offer increased flexibility and have proven capable of overcoming these fundamental limitations. Here, we present a multi-mode device optimized for quantum information processing. It features an anharmonicity of a third of the qubit frequency and reduced energy dispersion caused by charge and magnetic flux fluctuations. It exhibits improvements over the fundamental errors limiting Transmon and Fluxonium coherence and control, achieving ratios between the total coherence time and the gate time $T_2/t_g$ one order of magnitude larger than Transmon and two times larger than Fluxonium for microwave charge drives, assuming equal dielectric and inductive loss quality factors and limited drive strength. It furthermore demonstrates robustness against fabrication errors, a major limitation in many proposed multi-mode devices.
format Preprint
id arxiv_https___arxiv_org_abs_2407_18895
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Robust multi-mode superconducting circuit optimized for quantum information processing
García-Azorín, P.
Cárdenas-López, F. A.
Huber, G. B. P.
Romero, G.
Werninghaus, M.
Motzoi, F.
Filipp, S.
Sanz, M.
Quantum Physics
Multi-mode superconducting circuits offer a promising platform for engineering robust systems for quantum computation. Previous studies indicate that single-mode devices cannot be engineered to simultaneously exhibit resilience against multiple decoherence sources due to conflicting requirements. In contrast, multi-mode systems offer increased flexibility and have proven capable of overcoming these fundamental limitations. Here, we present a multi-mode device optimized for quantum information processing. It features an anharmonicity of a third of the qubit frequency and reduced energy dispersion caused by charge and magnetic flux fluctuations. It exhibits improvements over the fundamental errors limiting Transmon and Fluxonium coherence and control, achieving ratios between the total coherence time and the gate time $T_2/t_g$ one order of magnitude larger than Transmon and two times larger than Fluxonium for microwave charge drives, assuming equal dielectric and inductive loss quality factors and limited drive strength. It furthermore demonstrates robustness against fabrication errors, a major limitation in many proposed multi-mode devices.
title Robust multi-mode superconducting circuit optimized for quantum information processing
topic Quantum Physics
url https://arxiv.org/abs/2407.18895