Automated Optimization of Laser Fields for Quantum State Manipulation

Fuente: arXiv
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Bibliographic Details
Main Authors: Sahakyan, Roman, Sargsyan, Romik, Pogosyan, Edgar, Arzumanyan, Karen, Gazazyan, Emil A.
Format: Preprint
Published: 2025
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author Sahakyan, Roman
Sargsyan, Romik
Pogosyan, Edgar
Arzumanyan, Karen
Gazazyan, Emil A.
author_facet Sahakyan, Roman
Sargsyan, Romik
Pogosyan, Edgar
Arzumanyan, Karen
Gazazyan, Emil A.
contents A gradient-based optimization approach combined with automatic differentiation is employed to ensure high accuracy and scalability when working with high-dimensional parameter spaces. Numerical simulations confirm the effectiveness of the proposed method: the population is reliably transferred to the target state with minimal occupation of intermediate levels, while the control pulses remain smooth and physically implementable. The developed framework serves as a universal and experimentally applicable tool for automated control pulse design in quantum systems. It is particularly useful in scenarios where analytical methods or manual parameter tuning--such as standard schemes like STIRAP--prove to be inefficient or inapplicable.
format Preprint
id arxiv_https___arxiv_org_abs_2506_08485
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Automated Optimization of Laser Fields for Quantum State Manipulation
Sahakyan, Roman
Sargsyan, Romik
Pogosyan, Edgar
Arzumanyan, Karen
Gazazyan, Emil A.
Quantum Physics
A gradient-based optimization approach combined with automatic differentiation is employed to ensure high accuracy and scalability when working with high-dimensional parameter spaces. Numerical simulations confirm the effectiveness of the proposed method: the population is reliably transferred to the target state with minimal occupation of intermediate levels, while the control pulses remain smooth and physically implementable. The developed framework serves as a universal and experimentally applicable tool for automated control pulse design in quantum systems. It is particularly useful in scenarios where analytical methods or manual parameter tuning--such as standard schemes like STIRAP--prove to be inefficient or inapplicable.
title Automated Optimization of Laser Fields for Quantum State Manipulation
topic Quantum Physics
url https://arxiv.org/abs/2506.08485