Optimal design of nanomagnets for on-chip field gradients

Fuente: arXiv
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Hauptverfasser: Legrand, William, Lopes, Sandrine, Schaeverbeke, Quentin, Montaigne, François, Desjardins, Matthieu M.
Format: Preprint
Veröffentlicht: 2022
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author Legrand, William
Lopes, Sandrine
Schaeverbeke, Quentin
Montaigne, François
Desjardins, Matthieu M.
author_facet Legrand, William
Lopes, Sandrine
Schaeverbeke, Quentin
Montaigne, François
Desjardins, Matthieu M.
contents The generation of localized magnetic field gradients by on-chip nanomagnets is important for a variety of technological applications, in particular for spin qubits. To advance beyond the empirical design of these nanomagnets, we propose a systematic and general approach based on the micromagnetic formulation of an optimal field gradient source. We study the different field configurations that can be realized and find out quantitatively the most suitable ferromagnetic layer geometries. Using micromagnetic simulations, we then investigate the minimum requirements for reaching magnetic saturation in these nanomagnets. In terms of either longitudinal or transverse field gradient, the results provide an optimal solution for uniform, saturated nanomagnets, where the magnetic material can be selected according to the strength of the external fields that can be used.
format Preprint
id arxiv_https___arxiv_org_abs_2212_13156
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Optimal design of nanomagnets for on-chip field gradients
Legrand, William
Lopes, Sandrine
Schaeverbeke, Quentin
Montaigne, François
Desjardins, Matthieu M.
Mesoscale and Nanoscale Physics
Materials Science
Applied Physics
The generation of localized magnetic field gradients by on-chip nanomagnets is important for a variety of technological applications, in particular for spin qubits. To advance beyond the empirical design of these nanomagnets, we propose a systematic and general approach based on the micromagnetic formulation of an optimal field gradient source. We study the different field configurations that can be realized and find out quantitatively the most suitable ferromagnetic layer geometries. Using micromagnetic simulations, we then investigate the minimum requirements for reaching magnetic saturation in these nanomagnets. In terms of either longitudinal or transverse field gradient, the results provide an optimal solution for uniform, saturated nanomagnets, where the magnetic material can be selected according to the strength of the external fields that can be used.
title Optimal design of nanomagnets for on-chip field gradients
topic Mesoscale and Nanoscale Physics
Materials Science
Applied Physics
url https://arxiv.org/abs/2212.13156