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Control of the asymmetric growth of nanowire arrays with gradient profiles

A novel electrochemical methodology for the growth of arrays of Ni and Co nanowires (NWs) with linear and non-linear varying micro-height gradient profiles (μHGPs), has been developed. The growth mechanism of these microstructures consists of a three-dimensional growth originating from the allowed e...

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Autores principales: Patiño Cárdenas, Juan, Encinas, Armando, Ramírez Villegas, Rossana, de la Torre Medina, Joaquín
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9037112/
https://www.ncbi.nlm.nih.gov/pubmed/35479484
http://dx.doi.org/10.1039/d1ra04198c
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author Patiño Cárdenas, Juan
Encinas, Armando
Ramírez Villegas, Rossana
de la Torre Medina, Joaquín
author_facet Patiño Cárdenas, Juan
Encinas, Armando
Ramírez Villegas, Rossana
de la Torre Medina, Joaquín
author_sort Patiño Cárdenas, Juan
collection PubMed
description A novel electrochemical methodology for the growth of arrays of Ni and Co nanowires (NWs) with linear and non-linear varying micro-height gradient profiles (μHGPs), has been developed. The growth mechanism of these microstructures consists of a three-dimensional growth originating from the allowed electrical contact between the electrolyte and the edges of the cathode at the bottom side of porous alumina membranes. It has been shown that the morphology of these microstructures strongly depends on electrodeposition parameters like the cation material and concentration and the reduction potential. At constant reduction potentials, linear Ni μHGPs with trapezoid-like geometry are obtained, whereas deviations from this simple morphology are observed for Co μHGPs. In this regime, the μHGPs average inclination angle decreases for more negative reduction potential values, leading as a result to more laterally extended microstructures. Besides, more complex morphologies have been obtained by varying the reduction potential using a simple power function of time. Using this strategy allows us to accelerate or decelerate the reduction potential in order to change the μHGPs morphology, so to obtain convex- or concave-like profiles. This methodology is a novel and reliable strategy to synthesize μHGPs into porous alumina membranes with controlled and well-defined morphologies. Furthermore, the synthesized low dimensional asymmetrically loaded nanowired substrates with μHGPs are interesting for their application in micro-antennas for localized electromagnetic radiation, magnetic stray field gradients in microfluidic systems, non-reciprocal microwave absorption, and super-capacitive devices for which a very large surface area and controlled morphology are key requirements.
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spelling pubmed-90371122022-04-26 Control of the asymmetric growth of nanowire arrays with gradient profiles Patiño Cárdenas, Juan Encinas, Armando Ramírez Villegas, Rossana de la Torre Medina, Joaquín RSC Adv Chemistry A novel electrochemical methodology for the growth of arrays of Ni and Co nanowires (NWs) with linear and non-linear varying micro-height gradient profiles (μHGPs), has been developed. The growth mechanism of these microstructures consists of a three-dimensional growth originating from the allowed electrical contact between the electrolyte and the edges of the cathode at the bottom side of porous alumina membranes. It has been shown that the morphology of these microstructures strongly depends on electrodeposition parameters like the cation material and concentration and the reduction potential. At constant reduction potentials, linear Ni μHGPs with trapezoid-like geometry are obtained, whereas deviations from this simple morphology are observed for Co μHGPs. In this regime, the μHGPs average inclination angle decreases for more negative reduction potential values, leading as a result to more laterally extended microstructures. Besides, more complex morphologies have been obtained by varying the reduction potential using a simple power function of time. Using this strategy allows us to accelerate or decelerate the reduction potential in order to change the μHGPs morphology, so to obtain convex- or concave-like profiles. This methodology is a novel and reliable strategy to synthesize μHGPs into porous alumina membranes with controlled and well-defined morphologies. Furthermore, the synthesized low dimensional asymmetrically loaded nanowired substrates with μHGPs are interesting for their application in micro-antennas for localized electromagnetic radiation, magnetic stray field gradients in microfluidic systems, non-reciprocal microwave absorption, and super-capacitive devices for which a very large surface area and controlled morphology are key requirements. The Royal Society of Chemistry 2021-07-28 /pmc/articles/PMC9037112/ /pubmed/35479484 http://dx.doi.org/10.1039/d1ra04198c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Patiño Cárdenas, Juan
Encinas, Armando
Ramírez Villegas, Rossana
de la Torre Medina, Joaquín
Control of the asymmetric growth of nanowire arrays with gradient profiles
title Control of the asymmetric growth of nanowire arrays with gradient profiles
title_full Control of the asymmetric growth of nanowire arrays with gradient profiles
title_fullStr Control of the asymmetric growth of nanowire arrays with gradient profiles
title_full_unstemmed Control of the asymmetric growth of nanowire arrays with gradient profiles
title_short Control of the asymmetric growth of nanowire arrays with gradient profiles
title_sort control of the asymmetric growth of nanowire arrays with gradient profiles
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9037112/
https://www.ncbi.nlm.nih.gov/pubmed/35479484
http://dx.doi.org/10.1039/d1ra04198c
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