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◆ Frontiers in chemistry2026-01-01

Exploring the catalytic potential of transition metal decorated Al12N12 nanocages as a single atom catalyst for efficient hydrogen adsorption and dissociation reaction.

Ali Hussain, Aaiza Saif, Abrar Qadir, Fizza Anjum, Hamna Sharif, Muhammad Sajjad, Abdur Rauf, Mazhar Amjad Gilani, Junaid Yaqoob

原始摘要(英文原文)· Original abstract
Hydrogen is a key alternative to fossil fuels and plays a crucial role in industrial hydrogenation. This study employs first-principles density functional theory (DFT) simulations to investigate transition-metal-decorated Al12N12 single-atom catalysts (SACs) for H2 adsorption and dissociation. Interaction energy calculations indicate excellent thermodynamic stability of the catalysts, with Ti@Al12N12 exhibiting the strongest interaction energy of -2.56 eV. Natural bond orbital (NBO) and frontier molecular orbital (FMO) analyses reveal significant electron transfer from TM atoms to Al12N12, and a reduction of the HOMO-LUMO gap from 3.86 eV to 1.72 eV. The Ti@Al12N12 catalyst exhibits the lowest activation barrier, 0.005 eV, for H2 dissociation. Mechanistic insights indicate that atomic hydrogen (2H*) is more stable than molecular H2, with an energy release up to -1.64 eV. Bidirectional IRC calculations validated the H2 dissociation pathways on TM@Al12N12 catalysts. The blue patches in IRI analysis confirm covalent interactions between hydrogen and TM atoms. This study provides insights into designing efficient SACs for hydrogen dissociation.
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Exploring the catalytic potential of transition metal decorated Al12N12 nanocages as a single atom catalyst for efficient hydrogen adsorption and dissociation reaction. — 科研速览 Science Skim