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This study explores hydrogen adsorption in silicene modified through substitutional doping with transition metals (M = Cu, Sn, Ti, V, and Zn) and decorated with alkali or alkaline-earth metals (A = K, Li, and Mg), using first principles within the framework of Density Functional Theory. Substitutions were found to be energetically unfavorable, indicating weak M-silicene interactions. However, the introduction of decorations significantly improved binding energy. K and Li atoms formed stable bonds with silicene, while Mg showed weak interactions. Among all configurations, Ti@Li and V@Li systems showed adsorption energies slightly lower than the recommended range ( − 0 . 43 and − 0 . 42 e V ), yet achieved ideal desorption temperatures ( 308 . 20 − 359 . 36 K and rapid desorption times ( < 2 . 5 m s ), making them promising candidates for hydrogen storage under ambient conditions. Ti@K and V@K systems also met the energy criteria but required higher pressures ( ∼ 100 bar). Moreover, the Ti@Li, V@Li, and Ti@K systems all satisfy the required gravimetric benchmark for hydrogen storage, each providing a maximum capacity of approximately 9 wt%. Density of states analysis revealed strong hybridization between Ti or V and silicene near the Fermi level, while Sn and Mg showed weak interaction. Charge density difference analysis showed localized interaction with hydrogen. Additionally, temperature-programmed desorption (TPD) simulations based on first-order kinetics accurately reproduced desorption peak temperatures and coverage behavior, revealing the strong influence of both dopants and adatoms on hydrogen binding strength. These results provide valuable insight into the thermal stability and adsorption properties of the modified silicene systems. These findings identify Ti@Li, V@Li and Ti@K as promising candidates for hydrogen storage in silicene. • Substitutional doping in silicene is energetically unfavorable due to weak M–Si interactions. • Alkali decorations (K, Li) significantly enhance hydrogen binding; Mg shows weak interaction. • TPD simulations reveal desorption behavior and thermal stability. • Ti@Li, Ti@K and V@Li meet hydrogen storage criteria of US DOE’s set for 2025.
Ramirez-Gomez et al. (Wed,) studied this question.
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