A solid magnesium zincate for hydrogen-methane evolution

Hydrogen-methane blends are gaining attention as transitional fuels, but their safe storage and controlled release remain a challenge. Advancing this approach necessitates the development of compounds and materials capable of solid-state storage of mixed fuel gases. Molecular precursors capable of delivering both gases from a single source are not known. In this context, we report a low–molecular weight magnesium hydridomethylzincate, Mg[(CH 3 )ZnH 3 ], a crystalline, hydride-rich organometallic compound that does not rely on bulky supporting ligands. Under solvent-free, anaerobic conditions, it releases hydrogen and methane at temperatures as low as 80°C via reductive elimination, leaving behind elemental magnesium and zinc. The ability to liberate mixed fuel gases at relatively low temperatures underscores the potential of well-defined organometallic compounds as single-source precursors for these gases.

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Publication Details

Journal
Science Advances
Published
2026-10-07
DOI
https://doi.org/10.1126/sciadv.aej2622
Primary Topic
Hydrogen Storage and Materials
Type
article
Field-Weighted Citation Impact
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article

A solid magnesium zincate for hydrogen-methane evolution

Ajay Venugopal, Alex P. Andrews, Sheetal Kathayat Bisht, Poorna Gomathisankaran
Science Advances
Hydrogen Storage and Materials
article

A solid magnesium zincate for hydrogen-methane evolution

Ajay Venugopal, Alex P. Andrews, Sheetal Kathayat Bisht, Poorna Gomathisankaran
article en

Abstract

Hydrogen-methane blends are gaining attention as transitional fuels, but their safe storage and controlled release remain a challenge. Advancing this approach necessitates the development of compounds and materials capable of solid-state storage of mixed fuel gases. Molecular precursors capable of delivering both gases from a single source are not known. In this context, we report a low–molecular weight magnesium hydridomethylzincate, Mg[(CH 3 )ZnH 3 ], a crystalline, hydride-rich organometallic compound that does not rely on bulky supporting ligands. Under solvent-free, anaerobic conditions, it releases hydrogen and methane at temperatures as low as 80°C via reductive elimination, leaving behind elemental magnesium and zinc. The ability to liberate mixed fuel gases at relatively low temperatures underscores the potential of well-defined organometallic compounds as single-source precursors for these gases.

Science AdvancesVol. 12(41)
Indian Institute of Science Education and Research Thiruvananthapuram (IN)
Openalex Percentile: Top 27%
Hydrogen Storage and Materials
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