The mechanochemistry of lanthanum dihydride (LaH2) with hydrogen (H2) using the ball-mill process and the effect of oxidation on the resulting products

PRAMONO, WIDYA ANDIKA and Herbirowo, Satrio and Imaduddin, Agung and Antoro, Iwan Dwi and Hendrik, Hendrik and Nugraha, Iwan Dwi and Syampurwadi, Anung and Nufus, Ines Hayatun and Umna, Nihayatul and Diba, Silvia Farah and Amaliyah, Fina Fitratun (2024) The mechanochemistry of lanthanum dihydride (LaH2) with hydrogen (H2) using the ball-mill process and the effect of oxidation on the resulting products. Journal of Metals, Materials and Minerals, 34 (2): 1825. ISSN 08576149

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Abstract

The complex behavior of LaH2 during ball milling was investigated in this study, with its mechanical, chemical, and morphological changes explored. The relationship between milling time and hydrogen pressure reduction was uncovered through detailed experiments, reflecting the dynamic nature of the process. A transient yet significant event was observed upon unsealing the milling jar post-milling:
the emergence of a minor fire ember, indicative of the interplay between mechanical forces and chemical reactivity within the LaH2 powder. Profound changes in the structure, composition, and shape were unraveled using advanced techniques such as X-ray diffraction (XRD), scanning electron microscopy coupled with energy-dispersive X-ray spectroscopy (SEM/EDX), and particle size distribution analysis.
The resulting powder exhibited a dual-phase composition of lanthanum dihydride (LaH2, 68.1% to 71.5%) and lanthanum oxide (La2 O 3 , 28.5% to 31.9%), reflecting a dynamic chemical equilibrium during milling. Particle size distribution analysis revealed a notable increase in average diameter to 6420 nm, accompanied by a polydispersity index (PDI) of 0.831, signifying a broadening compared to
the initial LaH 2 powder. The morphological evolution of the powder was elucidated through SEM imaging, showing predominantly spherical and rounded forms, indicating extensive particle agglomeration and plastic deformation during milling. Additionally, the formation of oxide layers on the powder surface, intertwined with pronounced particle agglomeration, was highlighted through EDX mapping, shedding
light on the mechanical aspects of morphological evolution during milling. These findings contribute to our understanding of LaH2 behavior under extreme mechanical and chemical conditions and have implications for materials processing, hydrogen storage technologies, and broader applications in materials science and engineering.

Item Type: Article
Additional Information: This study investigates the mechanochemistry of lanthanum dihydride (LaH2) with hydrogen (H2) using a ball-mill process, focusing on the mechanical, chemical, and morphological changes during milling. Key findings include the emergence of fire embers post-milling, significant structural transformations, and the formation of a dual-phase composition of LaH2 and lanthanum oxide (La2O3). The research highlights the potential of mechanochemistry to enhance hydrogen storage properties and improve the efficiency of LaH2 as a hydrogen storage material.
Uncontrolled Keywords: Ball-mill process, Hydrogen Storage, Lanthanum Hydride, Mechanochemistry, Oxidation.
Subjects: Bidang Keilmuan > Hydrogen
Jurnal
Bidang Keilmuan > Mechanical Engineering
Bidang Keilmuan > Teknik Mesin
Divisions: Fakultas Teknologi dan Bisnis Energi > S1 Teknik Mesin
Depositing User: Yudha Formanto
Date Deposited: 08 Oct 2025 07:16
Last Modified: 08 Oct 2025 07:16
URI: https://repository.itpln.ac.id/id/eprint/1953

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