Unifying adiabatic state-transfer protocols with $(α, β)$-hypergeometries

Fuente: arXiv
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Hauptverfasser: Meinersen, Christian Ventura, Fernandez-Fernandez, David, Platero, Gloria, Rimbach-Russ, Maximilian
Format: Preprint
Veröffentlicht: 2025
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author Meinersen, Christian Ventura
Fernandez-Fernandez, David
Platero, Gloria
Rimbach-Russ, Maximilian
author_facet Meinersen, Christian Ventura
Fernandez-Fernandez, David
Platero, Gloria
Rimbach-Russ, Maximilian
contents Adiabatic optimal control schemes are essential for advancing the practical implementation of quantum technologies. However, the vast array of possible adiabatic protocols, combined with their dependence on the particular quantum system and function-specific parameter ranges, complicates the task of discerning their respective strengths and limitations in arbitrary operations. In this work, we provide a unifying framework, called $(α,β)$-hypergeometries, that allows for flexible, noise-resistant, and easy-to-use implementation of enforced adiabatic dynamics for any multi-level quantum system. Moreover, this framework provides a comprehensive mapping of all adiabatic protocols through a universal cost function and offers an exact analytical characterization of the adiabatic dynamics. In particular, we derive precise expressions for infidelity resonances and establish performance guarantees in the adiabatic limit for any choice of $(α,β)$. We also discuss in detail the experimental feasibility of the resulting pulse shapes through analytical and numerical methods. Finally, we test our method for the optimal control of coherent information transfer through spin shuttling in silicon quantum dots with small valley splittings.
format Preprint
id arxiv_https___arxiv_org_abs_2504_08031
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Unifying adiabatic state-transfer protocols with $(α, β)$-hypergeometries
Meinersen, Christian Ventura
Fernandez-Fernandez, David
Platero, Gloria
Rimbach-Russ, Maximilian
Quantum Physics
Mesoscale and Nanoscale Physics
Adiabatic optimal control schemes are essential for advancing the practical implementation of quantum technologies. However, the vast array of possible adiabatic protocols, combined with their dependence on the particular quantum system and function-specific parameter ranges, complicates the task of discerning their respective strengths and limitations in arbitrary operations. In this work, we provide a unifying framework, called $(α,β)$-hypergeometries, that allows for flexible, noise-resistant, and easy-to-use implementation of enforced adiabatic dynamics for any multi-level quantum system. Moreover, this framework provides a comprehensive mapping of all adiabatic protocols through a universal cost function and offers an exact analytical characterization of the adiabatic dynamics. In particular, we derive precise expressions for infidelity resonances and establish performance guarantees in the adiabatic limit for any choice of $(α,β)$. We also discuss in detail the experimental feasibility of the resulting pulse shapes through analytical and numerical methods. Finally, we test our method for the optimal control of coherent information transfer through spin shuttling in silicon quantum dots with small valley splittings.
title Unifying adiabatic state-transfer protocols with $(α, β)$-hypergeometries
topic Quantum Physics
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2504.08031