Dynamically corrected gates in silicon singlet-triplet spin qubits

Fuente: arXiv
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Main Authors: Walelign, Habitamu Y., Cai, Xinxin, Li, Bikun, Barnes, Edwin, Nichol, John M.
Format: Preprint
Published: 2024
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author Walelign, Habitamu Y.
Cai, Xinxin
Li, Bikun
Barnes, Edwin
Nichol, John M.
author_facet Walelign, Habitamu Y.
Cai, Xinxin
Li, Bikun
Barnes, Edwin
Nichol, John M.
contents Fault-tolerant quantum computation requires low physical-qubit gate errors. Many approaches exist to reduce gate errors, including both hardware- and control-optimization strategies. Dynamically corrected gates are designed to cancel specific errors and offer the potential for high-fidelity gates, but they have yet to be implemented in singlet-triplet spin qubits in semiconductor quantum dots, due in part to the stringent control constraints in these systems. In this work, we experimentally implement dynamically corrected gates designed to mitigate hyperfine noise in a singlet-triplet qubit realized in a Si/SiGe double quantum dot. The corrected gates reduce infidelities by about a factor of three, resulting in gate fidelities above 0.99 for both identity and Hadamard gates. The gate performances depend sensitively on pulse distortions, and their specific performance reveals an unexpected distortion in our experimental setup.
format Preprint
id arxiv_https___arxiv_org_abs_2405_15148
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Dynamically corrected gates in silicon singlet-triplet spin qubits
Walelign, Habitamu Y.
Cai, Xinxin
Li, Bikun
Barnes, Edwin
Nichol, John M.
Quantum Physics
Fault-tolerant quantum computation requires low physical-qubit gate errors. Many approaches exist to reduce gate errors, including both hardware- and control-optimization strategies. Dynamically corrected gates are designed to cancel specific errors and offer the potential for high-fidelity gates, but they have yet to be implemented in singlet-triplet spin qubits in semiconductor quantum dots, due in part to the stringent control constraints in these systems. In this work, we experimentally implement dynamically corrected gates designed to mitigate hyperfine noise in a singlet-triplet qubit realized in a Si/SiGe double quantum dot. The corrected gates reduce infidelities by about a factor of three, resulting in gate fidelities above 0.99 for both identity and Hadamard gates. The gate performances depend sensitively on pulse distortions, and their specific performance reveals an unexpected distortion in our experimental setup.
title Dynamically corrected gates in silicon singlet-triplet spin qubits
topic Quantum Physics
url https://arxiv.org/abs/2405.15148