Proposed real-time charge noise measurement via valley state reflectometry

Fuente: arXiv
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Autori principali: Kanaar, David W., Ercan, H. Ekmel, Gyure, Mark F., Kestner, J. P.
Natura: Preprint
Pubblicazione: 2024
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author Kanaar, David W.
Ercan, H. Ekmel
Gyure, Mark F.
Kestner, J. P.
author_facet Kanaar, David W.
Ercan, H. Ekmel
Gyure, Mark F.
Kestner, J. P.
contents We theoretically propose a method to perform in situ measurements of charge noise during logical operations in silicon quantum dot spin qubits. Our method does not require ancillary spectator qubits but makes use of the valley degree of freedom in silicon. Sharp interface steps or alloy disorder in the well provide a valley transition dipole element that couples to the field of an on-chip microwave resonator, allowing rapid reflectometry of valley splitting fluctuations caused by charge noise. We derive analytic expressions for the signal-to-noise ratio that can be expected and use tight binding simulations to extract the key parameters (valley splitting and valley dipole elements) under realistic disorder. We find that unity signal-to-noise ratio can often be obtained with measurement times below 1ms, faster than typical decoherence times, opening the potential for closed-loop control, real-time recalibration, and feedforward circuits
format Preprint
id arxiv_https___arxiv_org_abs_2402_14765
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Proposed real-time charge noise measurement via valley state reflectometry
Kanaar, David W.
Ercan, H. Ekmel
Gyure, Mark F.
Kestner, J. P.
Mesoscale and Nanoscale Physics
We theoretically propose a method to perform in situ measurements of charge noise during logical operations in silicon quantum dot spin qubits. Our method does not require ancillary spectator qubits but makes use of the valley degree of freedom in silicon. Sharp interface steps or alloy disorder in the well provide a valley transition dipole element that couples to the field of an on-chip microwave resonator, allowing rapid reflectometry of valley splitting fluctuations caused by charge noise. We derive analytic expressions for the signal-to-noise ratio that can be expected and use tight binding simulations to extract the key parameters (valley splitting and valley dipole elements) under realistic disorder. We find that unity signal-to-noise ratio can often be obtained with measurement times below 1ms, faster than typical decoherence times, opening the potential for closed-loop control, real-time recalibration, and feedforward circuits
title Proposed real-time charge noise measurement via valley state reflectometry
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2402.14765