Smooth velocity shuttling for suppressing valley excitations in disordered Si/SiGe quantum dots

Fuente: arXiv
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Autori principali: Nagai, Ryo, Takemoto, Takashi, Mizuno, Hiroyuki
Natura: Preprint
Pubblicazione: 2026
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author Nagai, Ryo
Takemoto, Takashi
Mizuno, Hiroyuki
author_facet Nagai, Ryo
Takemoto, Takashi
Mizuno, Hiroyuki
contents Coherent electron shuttling is a key requirement for realizing scalable silicon quantum computing architectures. However, in silicon qubits, the existence of nearly degenerate conduction-band valleys poses a significant challenge because non-adiabatic transitions to excited valley states cause spin dephasing via spin-valley mixing. In this paper, we propose a smooth velocity shuttling protocol to suppress these valley excitations. By mapping the time-domain design of the shuttling velocity profile onto the design problem of window functions in signal processing, we establish an analytical and intuitive design guideline that does not require computationally expensive numerical optimization. We demonstrate that the high-frequency sidelobes of the shuttling velocity spectrum can be effectively suppressed by applying a frequency-modulated gate voltage based on the Tukey window. Through numerical simulations incorporating realistic spatial randomness of the valley landscape, we show that the proposed smooth velocity control significantly reduces the average spin infidelity in the moderate-to-low disorder regime ($|Δ_0|/σ_Δ\simeq \mathcal{O}(1)$). Furthermore, we clarify that in devices designed with a large deterministic valley coupling $|Δ_0|$, combining it with this smoothing technique improves robustness against valley disorder. Our results underscore that this simple, control-level velocity shaping provides a robust pathway toward high-fidelity spin transport in large-scale silicon quantum processors.
format Preprint
id arxiv_https___arxiv_org_abs_2606_01541
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Smooth velocity shuttling for suppressing valley excitations in disordered Si/SiGe quantum dots
Nagai, Ryo
Takemoto, Takashi
Mizuno, Hiroyuki
Quantum Physics
Mesoscale and Nanoscale Physics
Coherent electron shuttling is a key requirement for realizing scalable silicon quantum computing architectures. However, in silicon qubits, the existence of nearly degenerate conduction-band valleys poses a significant challenge because non-adiabatic transitions to excited valley states cause spin dephasing via spin-valley mixing. In this paper, we propose a smooth velocity shuttling protocol to suppress these valley excitations. By mapping the time-domain design of the shuttling velocity profile onto the design problem of window functions in signal processing, we establish an analytical and intuitive design guideline that does not require computationally expensive numerical optimization. We demonstrate that the high-frequency sidelobes of the shuttling velocity spectrum can be effectively suppressed by applying a frequency-modulated gate voltage based on the Tukey window. Through numerical simulations incorporating realistic spatial randomness of the valley landscape, we show that the proposed smooth velocity control significantly reduces the average spin infidelity in the moderate-to-low disorder regime ($|Δ_0|/σ_Δ\simeq \mathcal{O}(1)$). Furthermore, we clarify that in devices designed with a large deterministic valley coupling $|Δ_0|$, combining it with this smoothing technique improves robustness against valley disorder. Our results underscore that this simple, control-level velocity shaping provides a robust pathway toward high-fidelity spin transport in large-scale silicon quantum processors.
title Smooth velocity shuttling for suppressing valley excitations in disordered Si/SiGe quantum dots
topic Quantum Physics
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2606.01541