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Boosting the Tunable Microwave Scattering Signature of Sensing Array Platforms Consisting of Amorphous Ferromagnetic Fe(2.25)Co(72.75)Si(10)B(15) Microwires and Its Amplification by Intercalating Cu Microwires

The following work addresses new configurations of sensing array platforms that are composed of Co-based amorphous ferromagnetic microwires (MWs) to obtain an enhanced modulation of the microwave scattering effects through the application of low strength DC or AC magnetic fields. An amorphous MW is...

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Autores principales: Archilla, Diego, López-Sánchez, Jesús, Hernando, Antonio, Navarro, Elena, Marín, Pilar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8066996/
https://www.ncbi.nlm.nih.gov/pubmed/33916556
http://dx.doi.org/10.3390/nano11040920
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author Archilla, Diego
López-Sánchez, Jesús
Hernando, Antonio
Navarro, Elena
Marín, Pilar
author_facet Archilla, Diego
López-Sánchez, Jesús
Hernando, Antonio
Navarro, Elena
Marín, Pilar
author_sort Archilla, Diego
collection PubMed
description The following work addresses new configurations of sensing array platforms that are composed of Co-based amorphous ferromagnetic microwires (MWs) to obtain an enhanced modulation of the microwave scattering effects through the application of low strength DC or AC magnetic fields. An amorphous MW is an ultrasoft ferromagnetic material (coercivity ~0.2 Oe) with a circumferential magnetic anisotropy that provides a high surface sensitivity when it is subjected to an external magnetic field. Firstly, microwave scattering experiments are performed as a function of the length and number of MWs placed parallel to each other forming an array. Subsequently, three array configurations are designed, achieving high S(21) scattering coefficients up to about −50 dB. The influence of DC and AC magnetic fields on S(21) has been analyzed in frequency and time domains representation, respectively. In addition, the MWs sensing array has been overlapped by polymeric surfaces and the variations of their micrometric thicknesses also cause strong changes in the S(21) amplitude with displacements in the frequency that are associated to the maximum scattering behavior. Finally, a new concept for amplifying microwave scattering is provided by intercalating Cu MWs into the linear Co-based arrays. The designed mixed system that is composed by Co-based and Cu MWs exhibits a higher S(21) coefficient when compared to a single Co-based MW system because of higher electrical conductivity of Cu. However, the ability to modulate the resulting electromagnetic scattering is conferred by the giant magneto-impedance (GMI) effects coming from properties of the ultrasoft amorphous MWs. The mixed array platform covers a wide range of sensor applications, demonstrating the feasibility of tuning the S(21) amplitude over a wide scattering range by applying AC or DC magnetic fields and tuning the resonant frequency position according to the polymeric slab thickness.
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spelling pubmed-80669962021-04-25 Boosting the Tunable Microwave Scattering Signature of Sensing Array Platforms Consisting of Amorphous Ferromagnetic Fe(2.25)Co(72.75)Si(10)B(15) Microwires and Its Amplification by Intercalating Cu Microwires Archilla, Diego López-Sánchez, Jesús Hernando, Antonio Navarro, Elena Marín, Pilar Nanomaterials (Basel) Article The following work addresses new configurations of sensing array platforms that are composed of Co-based amorphous ferromagnetic microwires (MWs) to obtain an enhanced modulation of the microwave scattering effects through the application of low strength DC or AC magnetic fields. An amorphous MW is an ultrasoft ferromagnetic material (coercivity ~0.2 Oe) with a circumferential magnetic anisotropy that provides a high surface sensitivity when it is subjected to an external magnetic field. Firstly, microwave scattering experiments are performed as a function of the length and number of MWs placed parallel to each other forming an array. Subsequently, three array configurations are designed, achieving high S(21) scattering coefficients up to about −50 dB. The influence of DC and AC magnetic fields on S(21) has been analyzed in frequency and time domains representation, respectively. In addition, the MWs sensing array has been overlapped by polymeric surfaces and the variations of their micrometric thicknesses also cause strong changes in the S(21) amplitude with displacements in the frequency that are associated to the maximum scattering behavior. Finally, a new concept for amplifying microwave scattering is provided by intercalating Cu MWs into the linear Co-based arrays. The designed mixed system that is composed by Co-based and Cu MWs exhibits a higher S(21) coefficient when compared to a single Co-based MW system because of higher electrical conductivity of Cu. However, the ability to modulate the resulting electromagnetic scattering is conferred by the giant magneto-impedance (GMI) effects coming from properties of the ultrasoft amorphous MWs. The mixed array platform covers a wide range of sensor applications, demonstrating the feasibility of tuning the S(21) amplitude over a wide scattering range by applying AC or DC magnetic fields and tuning the resonant frequency position according to the polymeric slab thickness. MDPI 2021-04-04 /pmc/articles/PMC8066996/ /pubmed/33916556 http://dx.doi.org/10.3390/nano11040920 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Archilla, Diego
López-Sánchez, Jesús
Hernando, Antonio
Navarro, Elena
Marín, Pilar
Boosting the Tunable Microwave Scattering Signature of Sensing Array Platforms Consisting of Amorphous Ferromagnetic Fe(2.25)Co(72.75)Si(10)B(15) Microwires and Its Amplification by Intercalating Cu Microwires
title Boosting the Tunable Microwave Scattering Signature of Sensing Array Platforms Consisting of Amorphous Ferromagnetic Fe(2.25)Co(72.75)Si(10)B(15) Microwires and Its Amplification by Intercalating Cu Microwires
title_full Boosting the Tunable Microwave Scattering Signature of Sensing Array Platforms Consisting of Amorphous Ferromagnetic Fe(2.25)Co(72.75)Si(10)B(15) Microwires and Its Amplification by Intercalating Cu Microwires
title_fullStr Boosting the Tunable Microwave Scattering Signature of Sensing Array Platforms Consisting of Amorphous Ferromagnetic Fe(2.25)Co(72.75)Si(10)B(15) Microwires and Its Amplification by Intercalating Cu Microwires
title_full_unstemmed Boosting the Tunable Microwave Scattering Signature of Sensing Array Platforms Consisting of Amorphous Ferromagnetic Fe(2.25)Co(72.75)Si(10)B(15) Microwires and Its Amplification by Intercalating Cu Microwires
title_short Boosting the Tunable Microwave Scattering Signature of Sensing Array Platforms Consisting of Amorphous Ferromagnetic Fe(2.25)Co(72.75)Si(10)B(15) Microwires and Its Amplification by Intercalating Cu Microwires
title_sort boosting the tunable microwave scattering signature of sensing array platforms consisting of amorphous ferromagnetic fe(2.25)co(72.75)si(10)b(15) microwires and its amplification by intercalating cu microwires
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8066996/
https://www.ncbi.nlm.nih.gov/pubmed/33916556
http://dx.doi.org/10.3390/nano11040920
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