Hydrogen Storage Mechanism by Gas-Phase Vanadium Cluster Cations Revealed by Thermal Desorption Spectrometry.
Yangkun WuKen MiyajimaSatoshi KudohToshiaki NagataFumitaka MafunéPublished in: The journal of physical chemistry. A (2023)
The adsorption of hydrogen on gas-phase vanadium cluster cations, V n + ( n = 3-14), at 300 K and desorption of hydrogen from hydride clusters, V n H m + , upon heating were observed experimentally by combined thermal desorption spectrometry and mass spectrometry analyses. The ratio m / n was approximately 1.3 for all n values at 300 K, which was reduced to approximately zero at 1000 K. For n = 4, stable cluster geometries of V 4 H m + ( m = 0, 2, 4, and 6) were investigated by DFT calculations, revealing that V 4 adopted a trigonal pyramidal structure and the H atoms adsorbed mainly on the μ 2 bridge sites. The adsorption reaction pathway of one H 2 molecule on V 4 + was also investigated. The experimentally estimated desorption energies of the H 2 molecules were consistent with their calculated binding energies. Among the observed hydride clusters, V 6 H 8 + was found to be significantly thermally durable, probably because of its close-packed octahedral V 6 core structure, with H atoms occupying all hollow sites.
Keyphrases
- density functional theory
- mass spectrometry
- high resolution
- gas chromatography
- molecular dynamics
- ionic liquid
- liquid chromatography
- atomic force microscopy
- visible light
- molecular docking
- molecular dynamics simulations
- solid phase extraction
- molecularly imprinted
- binding protein
- highly efficient
- simultaneous determination
- light emitting