Physics-Informed Optimisation of Conveyor Mode Spin Qubit Transport

Fuente: arXiv
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Main Authors: Sokolov, Andrii, Power, Conor, Blokhina, Elena
Format: Preprint
Published: 2025
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author Sokolov, Andrii
Power, Conor
Blokhina, Elena
author_facet Sokolov, Andrii
Power, Conor
Blokhina, Elena
contents Scalable quantum information processing in spin-based architectures necessitates the a bility to reliably shuttle quantum states across extended device regions with minimal decoherence. In this work, we present a physics-informed algorithm for optimizing electrostatic bias equences that enable conveyor-mode electron transport in silicon-based quantum dot devices. Our approach combines self-consistent Poisson and Schrodinger solvers to maintain a constant ground state energy and enable near-constant velocity shuttling, with potential applicability to both single-electron and hole transport. We validate the algorithm across three representative technologies: Fully-Depleted Silicon on Insulator (FD-SOI), Silicon Metal-Oxide-Seminconductor (SiMOS) and Silicon-Germanium Heterostracture (Si/SiGe), highlighting key limitations and material-specific effects that influence transport fidelity. Our findings underscore the impact of gate geometry, dielectric interfaces, and quantum dot size on the stability of shuttling operations, and offer pathways toward improving coherence preservation in large-scale quantum systems.
format Preprint
id arxiv_https___arxiv_org_abs_2510_06943
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Physics-Informed Optimisation of Conveyor Mode Spin Qubit Transport
Sokolov, Andrii
Power, Conor
Blokhina, Elena
Quantum Physics
Scalable quantum information processing in spin-based architectures necessitates the a bility to reliably shuttle quantum states across extended device regions with minimal decoherence. In this work, we present a physics-informed algorithm for optimizing electrostatic bias equences that enable conveyor-mode electron transport in silicon-based quantum dot devices. Our approach combines self-consistent Poisson and Schrodinger solvers to maintain a constant ground state energy and enable near-constant velocity shuttling, with potential applicability to both single-electron and hole transport. We validate the algorithm across three representative technologies: Fully-Depleted Silicon on Insulator (FD-SOI), Silicon Metal-Oxide-Seminconductor (SiMOS) and Silicon-Germanium Heterostracture (Si/SiGe), highlighting key limitations and material-specific effects that influence transport fidelity. Our findings underscore the impact of gate geometry, dielectric interfaces, and quantum dot size on the stability of shuttling operations, and offer pathways toward improving coherence preservation in large-scale quantum systems.
title Physics-Informed Optimisation of Conveyor Mode Spin Qubit Transport
topic Quantum Physics
url https://arxiv.org/abs/2510.06943