Resilient superconducting-element design with genetic algorithms

Fuente: arXiv
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Main Authors: Cárdenas-López, F. A., Retamal, J. C., Chen, Xi, Romero, G., Sanz, M.
Format: Preprint
Published: 2023
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author Cárdenas-López, F. A.
Retamal, J. C.
Chen, Xi
Romero, G.
Sanz, M.
author_facet Cárdenas-López, F. A.
Retamal, J. C.
Chen, Xi
Romero, G.
Sanz, M.
contents We present superconducting quantum circuits which exhibit atomic energy spectrum and selection rules as ladder and lambda three-level configurations designed by means of genetic algorithms. These heuristic optimization techniques are employed for adapting the topology and the parameters of a set of electrical circuits to find the suitable architecture matching the required energy levels and relevant transition matrix elements. We analyze the performance of the optimizer on one-dimensional single- and multi-loop circuits to design ladder ($Ξ$) and lambda ($Λ$) three-level system with specific transition matrix elements. As expected, attaining both the required energy spectrum and the needed selection rules is challenging for single-loop circuits, but they can be accurately obtained even with just two loops. Additionally, we show that our multi-loop circuits are robust under random fluctuation in their circuital parameters, i.e. under eventual fabrication flaws. Developing an optimization algorithm for automatized circuit quantization opens an avenue to engineering superconducting circuits with specific symmetry to be used as modules within large-scale setups, which may allow us to mitigate the well-known current errors observed in the first generation of quantum processors.
format Preprint
id arxiv_https___arxiv_org_abs_2302_01837
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Resilient superconducting-element design with genetic algorithms
Cárdenas-López, F. A.
Retamal, J. C.
Chen, Xi
Romero, G.
Sanz, M.
Quantum Physics
We present superconducting quantum circuits which exhibit atomic energy spectrum and selection rules as ladder and lambda three-level configurations designed by means of genetic algorithms. These heuristic optimization techniques are employed for adapting the topology and the parameters of a set of electrical circuits to find the suitable architecture matching the required energy levels and relevant transition matrix elements. We analyze the performance of the optimizer on one-dimensional single- and multi-loop circuits to design ladder ($Ξ$) and lambda ($Λ$) three-level system with specific transition matrix elements. As expected, attaining both the required energy spectrum and the needed selection rules is challenging for single-loop circuits, but they can be accurately obtained even with just two loops. Additionally, we show that our multi-loop circuits are robust under random fluctuation in their circuital parameters, i.e. under eventual fabrication flaws. Developing an optimization algorithm for automatized circuit quantization opens an avenue to engineering superconducting circuits with specific symmetry to be used as modules within large-scale setups, which may allow us to mitigate the well-known current errors observed in the first generation of quantum processors.
title Resilient superconducting-element design with genetic algorithms
topic Quantum Physics
url https://arxiv.org/abs/2302.01837