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Full Length Article | Open Access

Three dimensional-transition element selectivity for electrochemical hydrogen charging in MgAlNi-based lightweight high-entropy alloys as electrodes for M-MH batteries

A. Martinez-GarciaaVíctor M. Orozco-CarmonaaJ.M. Mendoza-DuartebS. GonzálezcA.K. Navarro-MtzdE.A. Juarez-Arellanod( )C.G. Garay-Reyesa( )R. Martínez-Sáncheza
Departamento de Metalurgia e Integridad Estructural, Centro de Investigación en Materiales Avanzados, Avenida Miguel de Cervantes Saavedra 120, C.P. 31136, Chihuahua, Chihuahua, Mexico
Departamento de Física de Materiales, Centro de Investigación en Materiales Avanzados, Avenida Miguel de Cervantes Saavedra 120, C.P. 31136, Chihuahua, Chihuahua, Mexico
Department of Materials Science and Engineering, Universidad Carlos Ⅲ de Madrid, Avda. Universidad 30 28911, Madrid, Spain
Centro de Investigaciones Científicas, Instituto de Química Aplicada, Universidad del Papaloapan, Campus Tuxtepec, Circuito central 200, Col. Parque Industrial, C.P. 68301, Tuxtepec, Oaxaca, Mexico

Peer review under the responsibility of Chongqing University.

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Abstract

This study reports the effect of 3d transition elements on the electrochemical hydrogen storage of MgNiAl-based high-entropy alloys (HEAs). The HEAs were designed using empirical equations that relate thermodynamic parameters such as enthalpy and valence electron concentration. The HEAs of the MgAlNiTiCr, MgAlNiTiCo, MgAlNiFeTi, MgAlNiFeCu and MgAlNiFeZn alloys systems were obtained by high-energy ball-milling. The electrochemical hydrogen storage properties investigated were the activation capacity, discharge capacity, charge-discharge kinetics, corrosion-passivation, and hydrogen diffusion mechanism. The design equations for the HEAs predicted the formation of a solid solution with a body-centered cubic structure as the main phase, which was confirmed after structural and microstructural characterization. Alloys with Ti presence favors the TiH2 formation as a secondary phase during the milling process. The HEAs revealed good activation properties for electrochemical hydrogen storage. The electrochemical analysis results of the HEAs porous electrodes showed that Cr inhibits the electrode discharge capacity, Co improves the charge/discharge kinetics, Ti and Fe influence the diffusion mechanism, Cu significantly increases the hydrogen discharge capacity and Zn provides a good discharge capacity and facilitates the corrosion-oxidation of the electrode surface, similar to Cr.

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Journal of Magnesium and Alloys

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Cite this article:
Martinez-Garcia A, Orozco-Carmona VM, Mendoza-Duarte J, et al. Three dimensional-transition element selectivity for electrochemical hydrogen charging in MgAlNi-based lightweight high-entropy alloys as electrodes for M-MH batteries. Journal of Magnesium and Alloys, 2026, 15(C). https://doi.org/10.1016/j.jma.2025.08.029

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Received: 29 April 2025
Revised: 09 July 2025
Accepted: 19 August 2025
Published: 16 September 2025
© 2026 Chongqing University.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/)