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Hydrogen storage in porous aluminosilicate ceramics and light-metal hydrides: Physisorption-chemisorption interplay

M. S. PaizullakhanovInstitute of Materials Sciences, Uzbekistan Academy of Sciences, Tashkent 100084, UzbekistanO. RakhmatovDepartment of Electronics and Instrumentation, Fergana State Technical University, Fergana 150100, UzbekistanFeruza YusupovaDepartment of Electronics and Instrumentation, Fergana State Technical University, Fergana 150100, UzbekistanNurmamat UmaralievFerghana Polytechnical InstituteSirojiddin ErgashevDepartment of Electronics and Instrumentation, Fergana State Technical University, Fergana 150100, UzbekistanShukhrat SultonovDepartment of Electronics and Instrumentation, Fergana State Technical University, Fergana 150100, UzbekistanUmida XusanovaFerghana State UniversityShakhnozakhon NazirjonovaFerghana Polytechnical InstituteZulayho Mavlyanova (Nabieva)Ferghana Polytechnical InstituteYan YanSchool of Chemistry & Chemical Engineering, Anhui University of Technology, Ma’anshan 243002, ChinaSetora Usmanovna TuropovaInstitute of Materials Sciences, Uzbekistan Academy of Sciences, Tashkent 100084, UzbekistanUmedjon KhalilovInstitute of Ion Plasma Laser TechnologiesO. R. ParpievInstitute of Materials Sciences, Uzbekistan Academy of Sciences, Tashkent 100084, Uzbekistan
2026
ABI

Annotatsiya

Efficient solid-state hydrogen storage remains a key challenge for hydrogen-based energy systems. In this work, porous aluminosilicate ceramics of the Al-SiO2 composition synthesized with combustible pore-forming additives and selected light-metal hydrides (LiH, TiH2, MgH2) were investigated as hydrogen storage media. The ceramics form a single-phase zeolite-type cubic structure with a = 4.056 Å and a hierarchical pore network (pore diameters 2–28 µm, porosity ≈ 44%) that supports gas transport. Hydrogenation experiments were performed in a high-temperature sealed reactor using gravimetric mass-gain measurements with explicit calibration, blank tests, and uncertainty analysis. Under optimal conditions (200 °C, 12 atm), the porous Al-SiO2 ceramics show a preliminary hydrogen storage capacity of up to 11 wt.% from mass-gain data, indicating strong potential but still requiring confirmation by standard P-C-T characterization. The storage mechanism combines physisorption on the porous framework with chemisorption and hydride-like phase formation (e.g., AlH3), and cyclic tests reveal noticeable structural degradation after about five sorption-desorption cycles. Comparative measurements show capacities of ≈0.7 wt.% for porous nickel, 1.5 wt.% for magnesium, 3.8 wt.% for titanium (near its 4.04 wt.% theoretical limit), and up to 12.4 wt.% for lithium at 700 °C and 12 atm, confirming the strong promise of porous aluminosilicates and light-metal hydrides for solid-state hydrogen storage.

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