Role of microstructure in the hydrogen storage capacity and kinetics of TiFe AB-type alloys

This investigation evaluates how the microstructure of TiFe AB-type alloys, produced by vacuum induction melting and different cooling rates, affects their solid-state hydrogen storage capacity and kinetics. The chemical and phase composition was evaluated by X-ray energy dispersive spectroscopy and X-ray diffraction. While the microstructure of the alloys was observed by scanning electron microscopy. Once the samples were obtained, a mechanical milling process was carried out for 1 h to reduce the particle size and eliminate possible surface oxide layers. Subsequently, the kinetics and hydrogen storage capacity were evaluated using a self-constructed Sieverts-type apparatus. The results obtained show that a mixture of TiFe and TiFe 2 crystalline phases was obtained in the molten samples. The highest hydrogen storage capacity obtained was ∼1.7 wt%, showing a decrease as the proportion of secondary phases, such as TiFe 2 and Fe-rich phases, increased.

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Publication Details

Journal
Heliyon
Published
2026-08-28
DOI
https://doi.org/10.1016/j.heliyon.2026.e45338
Primary Topic
Hydrogen Storage and Materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Role of microstructure in the hydrogen storage capacity and kinetics of TiFe AB-type alloys

Sindy Bello, J.A. Lenis, Robinson Aguirre Ocampo, Esteban Correa et al.
Heliyon
Hydrogen Storage and Materials
article

Role of microstructure in the hydrogen storage capacity and kinetics of TiFe AB-type alloys

Sindy Bello, J.A. Lenis, Robinson Aguirre Ocampo, Esteban Correa, Julián Arias Velandia, Alejandro A. Zuleta Gil, Carlos Arrieta, Francisco J. Bolívar, Félix Echeverría Echeverría
article en

Abstract

This investigation evaluates how the microstructure of TiFe AB-type alloys, produced by vacuum induction melting and different cooling rates, affects their solid-state hydrogen storage capacity and kinetics. The chemical and phase composition was evaluated by X-ray energy dispersive spectroscopy and X-ray diffraction. While the microstructure of the alloys was observed by scanning electron microscopy. Once the samples were obtained, a mechanical milling process was carried out for 1 h to reduce the particle size and eliminate possible surface oxide layers. Subsequently, the kinetics and hydrogen storage capacity were evaluated using a self-constructed Sieverts-type apparatus. The results obtained show that a mixture of TiFe and TiFe 2 crystalline phases was obtained in the molten samples. The highest hydrogen storage capacity obtained was ∼1.7 wt%, showing a decrease as the proportion of secondary phases, such as TiFe 2 and Fe-rich phases, increased.

HeliyonVol. 12(14)
Universidad Pontificia Bolivariana (CO), Universidad de Antioquia (CO), Universidad de Medellín (CO)
Ministerio de Ciencia, Tecnología e Innovación, Sistema General de Regalías de Colombia, Agencia Nacional de Hidrocarburos
Affordable and clean energy
Openalex Percentile: Top 23%
Hydrogen Storage and Materials
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