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Research PaperResearchia:202604.22046

Efficient optimisation of multi-parameter quantum control protocols for strongly-coupled systems

Sion Meredith

Abstract

Achieving high-fidelity control in the presence of strong non-Markovian noise is critical for the optimization of emergent solid-state quantum devices. We present a highly efficient optimization framework that combines automatic differentiation with the non-Markovian uniTEMPO algorithm, enabling direct gradient-based optimization of complex objective functions. We apply this method to semiconductor quantum dots, optimizing multi-pulse excitation schemes: specifically Swing-UP of a Quantum Emmite...

Submitted: April 22, 2026Subjects: Quantum Physics; Quantum Computing

Description / Details

Achieving high-fidelity control in the presence of strong non-Markovian noise is critical for the optimization of emergent solid-state quantum devices. We present a highly efficient optimization framework that combines automatic differentiation with the non-Markovian uniTEMPO algorithm, enabling direct gradient-based optimization of complex objective functions. We apply this method to semiconductor quantum dots, optimizing multi-pulse excitation schemes: specifically Swing-UP of a Quantum EmmiteR (SUPER) and Floquet-engineered Two-Photon Excitation (FTPE) for single- and bi-exciton generation. Our approach yields high preparation fidelities within experimentally accessible parameter regimes. By integrating adiabatic rapid passage (ARP), we systematically enhance both SUPER and FTPE, demonstrating that these optimized protocols consistently outperform standard resonant pi-pulses and two-photon excitation. Notably, this performance gap widens at elevated temperatures, establishing the superior thermal robustness of our optimized multi-pulse strategies for real-world quantum hardware.


Source: arXiv:2604.19621v1 - http://arxiv.org/abs/2604.19621v1 PDF: https://arxiv.org/pdf/2604.19621v1 Original Link: http://arxiv.org/abs/2604.19621v1

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Date:
Apr 22, 2026
Topic:
Quantum Computing
Area:
Quantum Physics
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