Charge-noise spectroscopy of Si/SiGe quantum dots via
dynamically-decoupled exchange oscillations
- URL: http://arxiv.org/abs/2103.02448v2
- Date: Fri, 18 Feb 2022 14:11:28 GMT
- Title: Charge-noise spectroscopy of Si/SiGe quantum dots via
dynamically-decoupled exchange oscillations
- Authors: Elliot J. Connors, JJ Nelson, Lisa F. Edge, and John M. Nichol
- Abstract summary: We measure the charge-noise spectrum of a Si/SiGe singlet-triplet qubit over nearly 12 decades in frequency.
The noise is colored across the entire frequency range of our measurements, although the spectral exponent changes with frequency.
Simple transport measurements can accurately characterize the charge noise over a wide frequency range in Si/SiGe quantum dots.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Electron spins in silicon quantum dots are promising qubits due to their long
coherence times, scalable fabrication, and potential for all-electrical
control. However, charge noise in the host semiconductor presents a major
obstacle to achieving high-fidelity single- and two-qubit gates in these
devices. In this work, we measure the charge-noise spectrum of a Si/SiGe
singlet-triplet qubit over nearly 12 decades in frequency using a combination
of methods, including dynamically-decoupled exchange oscillations with up to
512 {\pi} pulses during the qubit evolution. The charge noise is colored across
the entire frequency range of our measurements, although the spectral exponent
changes with frequency. Moreover, the charge-noise spectrum inferred from
conductance measurements of a proximal sensor quantum dot agrees with that
inferred from coherent oscillations of the singlet-triplet qubit, suggesting
that simple transport measurements can accurately characterize the charge noise
over a wide frequency range in Si/SiGe quantum dots.
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