Impact of the local valley splitting on the coherence of conveyor-belt spin shuttling in 28Si/SiGe

M Mats Volmer T Tom Struck A Arnau Sala J Jhih-Sian Tu S Stefan Trellenkamp D Davide Degli Esposti G Giordano Scappucci Łukasz Cywiński H Hendrik Bluhm (Chemical Sciences Division and Advanced Light Source) L Lars R. Schreiber

Abstract

Abstract Electron spins in silicon offer a promising path toward scalable, fault-tolerant quantum computing, with the potential to host millions of qubits. However, scaling up dense quantum-dot arrays and enabling qubit interconnections through shuttling are hindered by uncontrolled lateral variations of the valley splitting energy E VS . We map E VS across a 40 nm × 400 nm region of a 28 Si/Si 0.7 Ge 0.3 shuttle device and analyze the spin coherence of a single electron spin transported by conveyor-belt shuttling. We observe that the E VS varies over a wide range from 1.5 μeV to 200 μeV and is dominated by SiGe alloy disorder. In regions of low E VS and at spin-valley resonances, spin coherence is reduced and its dependence on shuttle velocity matches predictions. Rapid and frequent traversal of low- E VS regions induces a regime of enhanced spin coherence explained by motional narrowing. By selecting shuttle trajectories that avoid problematic areas on the E VS map, we achieve transport over tens of microns with coherence limited by the coupling to a static electron spin entangled with the mobile qubit. Our results provide experimental confirmation of the theory of spin decoherence of mobile electron spin-qubits and present practical strategies to integrate conveyor-mode qubit shuttling into silicon quantum chips.

Article Details

Volume / Issue Vol. 17, Issue 1
Published June 19, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (10)

M

Mats Volmer

T

Tom Struck

A

Arnau Sala

J

Jhih-Sian Tu

S

Stefan Trellenkamp

D

Davide Degli Esposti

G

Giordano Scappucci

Łukasz Cywiński

H

Hendrik Bluhm

Chemical Sciences Division and Advanced Light Source

L

Lars R. Schreiber