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From Binary to Ternary Transition-Metal Nitrides: A Boost toward Nitrogen Magneto-Ionics

[Image: see text] Magneto-ionics is an emerging actuation mechanism to control the magnetic properties of materials via voltage-driven ion motion. This effect largely relies on the strength and penetration of the induced electric field into the target material, the amount of generated ion transport...

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Autores principales: Tan, Zhengwei, Martins, Sofia, Escobar, Michael, de Rojas, Julius, Ibrahim, Fatima, Chshiev, Mairbek, Quintana, Alberto, Lopeandia, Aitor, Costa-Krämer, José L., Menéndez, Enric, Sort, Jordi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9542705/
https://www.ncbi.nlm.nih.gov/pubmed/36129787
http://dx.doi.org/10.1021/acsami.2c12847
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author Tan, Zhengwei
Martins, Sofia
Escobar, Michael
de Rojas, Julius
Ibrahim, Fatima
Chshiev, Mairbek
Quintana, Alberto
Lopeandia, Aitor
Costa-Krämer, José L.
Menéndez, Enric
Sort, Jordi
author_facet Tan, Zhengwei
Martins, Sofia
Escobar, Michael
de Rojas, Julius
Ibrahim, Fatima
Chshiev, Mairbek
Quintana, Alberto
Lopeandia, Aitor
Costa-Krämer, José L.
Menéndez, Enric
Sort, Jordi
author_sort Tan, Zhengwei
collection PubMed
description [Image: see text] Magneto-ionics is an emerging actuation mechanism to control the magnetic properties of materials via voltage-driven ion motion. This effect largely relies on the strength and penetration of the induced electric field into the target material, the amount of generated ion transport pathways, and the ionic mobility inside the magnetic media. Optimizing all these factors in a simple way is a huge challenge, although highly desirable for technological applications. Here, we demonstrate that the introduction of suitable transition-metal elements to binary nitride compounds can drastically boost magneto-ionics. More specifically, we show that the attained magneto-ionic effects in CoN films (i.e., saturation magnetization, toggling speeds, and cyclability) can be drastically enhanced through 10% substitution of Co by Mn in the thin-film composition. Incorporation of Mn leads to transformation from nanocrystalline into amorphous-like structures, as well as from metallic to semiconducting behaviors, resulting in an increase of N-ion transport channels. Ab initio calculations reveal a lower energy barrier for CoMn–N compared to Co–N that provides a fundamental understanding of the crucial role of Mn addition in the voltage-driven magnetic effects. These results constitute an important step forward toward enhanced voltage control of magnetism via electric field-driven ion motion.
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spelling pubmed-95427052022-10-08 From Binary to Ternary Transition-Metal Nitrides: A Boost toward Nitrogen Magneto-Ionics Tan, Zhengwei Martins, Sofia Escobar, Michael de Rojas, Julius Ibrahim, Fatima Chshiev, Mairbek Quintana, Alberto Lopeandia, Aitor Costa-Krämer, José L. Menéndez, Enric Sort, Jordi ACS Appl Mater Interfaces [Image: see text] Magneto-ionics is an emerging actuation mechanism to control the magnetic properties of materials via voltage-driven ion motion. This effect largely relies on the strength and penetration of the induced electric field into the target material, the amount of generated ion transport pathways, and the ionic mobility inside the magnetic media. Optimizing all these factors in a simple way is a huge challenge, although highly desirable for technological applications. Here, we demonstrate that the introduction of suitable transition-metal elements to binary nitride compounds can drastically boost magneto-ionics. More specifically, we show that the attained magneto-ionic effects in CoN films (i.e., saturation magnetization, toggling speeds, and cyclability) can be drastically enhanced through 10% substitution of Co by Mn in the thin-film composition. Incorporation of Mn leads to transformation from nanocrystalline into amorphous-like structures, as well as from metallic to semiconducting behaviors, resulting in an increase of N-ion transport channels. Ab initio calculations reveal a lower energy barrier for CoMn–N compared to Co–N that provides a fundamental understanding of the crucial role of Mn addition in the voltage-driven magnetic effects. These results constitute an important step forward toward enhanced voltage control of magnetism via electric field-driven ion motion. American Chemical Society 2022-09-21 2022-10-05 /pmc/articles/PMC9542705/ /pubmed/36129787 http://dx.doi.org/10.1021/acsami.2c12847 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Tan, Zhengwei
Martins, Sofia
Escobar, Michael
de Rojas, Julius
Ibrahim, Fatima
Chshiev, Mairbek
Quintana, Alberto
Lopeandia, Aitor
Costa-Krämer, José L.
Menéndez, Enric
Sort, Jordi
From Binary to Ternary Transition-Metal Nitrides: A Boost toward Nitrogen Magneto-Ionics
title From Binary to Ternary Transition-Metal Nitrides: A Boost toward Nitrogen Magneto-Ionics
title_full From Binary to Ternary Transition-Metal Nitrides: A Boost toward Nitrogen Magneto-Ionics
title_fullStr From Binary to Ternary Transition-Metal Nitrides: A Boost toward Nitrogen Magneto-Ionics
title_full_unstemmed From Binary to Ternary Transition-Metal Nitrides: A Boost toward Nitrogen Magneto-Ionics
title_short From Binary to Ternary Transition-Metal Nitrides: A Boost toward Nitrogen Magneto-Ionics
title_sort from binary to ternary transition-metal nitrides: a boost toward nitrogen magneto-ionics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9542705/
https://www.ncbi.nlm.nih.gov/pubmed/36129787
http://dx.doi.org/10.1021/acsami.2c12847
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