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Dual Functional Nanostructured Nickel Electrodes on Anodic Alumina for Energy Storage Applications - imarina:9462781

Autor/es de la URV:Ferré Borrull, José / Marsal Garví, Luis Francisco
Autor según el artículo:Aftab, Tabish; Ferre-Borrull, Josep; Marsal, Lluis F; Marsal, Lluis F
Direcció de correo del autor:josep.ferre@urv.cat
lluis.marsal@urv.cat
Identificador del autor:0000-0002-5210-5133
0000-0002-5976-1408
Año de publicación de la revista:2025-06-06
Tipo de publicación:Journal Publications
Referencia de l'ítem segons les normes APA:Aftab, Tabish; Ferre-Borrull, Josep; Marsal, Lluis F; Marsal, Lluis F (2025). Dual Functional Nanostructured Nickel Electrodes on Anodic Alumina for Energy Storage Applications. ACS Omega, 10(23), 24618-24627. DOI: 10.1021/acsomega.5c01368
Referencia al articulo segun fuente origial:ACS Omega. 10 (23): 24618-24627
Resumen:This study presents a novel approach for fabricating nickel-based nanorod electrodes with dual electrochemical functionality, bridging supercapacitive and faradaic applications. Using nanoporous anodic alumina (NAA) templates and a pulsed electrodeposition technique, two distinct electrode configurations were engineered from a single presubstrate: nickel nanorods in NAA with partially dissolved pore walls (Ni-NR@NAA) and free-standing nickel nanorods after NAA removal and Ni redeposition (Ni-R-NR@NAA). Structural analysis via field-emission scanning electron microscopy (FESEM) confirmed the uniformity and integrity of the nanorods, while their electrochemical performance was evaluated by cyclic voltammetry (CV). The Ni-NR@NAA electrodes demonstrated the pseudocapacitive performance, achieving a capacitance per unit area of 104 mFcm-2, which is nearly seven times higher than flat nickel electrodes, attributed to the enhanced active surface area and efficient ion transport. Specific capacitance can reach up to 60 Fg-1 at low scan rates. In contrast, the Ni-R-NR@NAA electrodes exhibited predominantly capacitive behavior with reduced redox activity due to structural modifications. These results emphasize the critical role of nanostructural design in tuning the electrochemical performance, offering a versatile platform for advanced energy storage devices capable of dual supercapacitive and faradaic functionality.
DOI del artículo:10.1021/acsomega.5c01368
Enlace a la fuente original:https://pubs.acs.org/doi/10.1021/acsomega.5c01368
Versión del articulo depositado:info:eu-repo/semantics/publishedVersion
Acceso a la licencia de uso:https://creativecommons.org/licenses/by/3.0/es/
Departamento:Enginyeria Electrònica, Elèctrica i Automàtica
URL Documento de licencia:https://repositori.urv.cat/ca/proteccio-de-dades/
Áreas temáticas:Química
Interdisciplinar
General chemistry
General chemical engineering
Engenharias ii
Ciências agrárias i
Chemistry, multidisciplinary
Chemistry (miscellaneous)
Chemistry (all)
Chemical engineering (miscellaneous)
Chemical engineering (all)
Palabras clave:Affordable and clean energy
Entidad:Universitat Rovira i Virgili
Fecha de alta del registro:2026-04-25
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