Size-Dependent Hydrogen Adsorption and Desorption by Gas-Phase Iron Cluster Cations Revealed by Thermal Desorption
1Department of Basic Science, School of Arts and Sciences, The University of Tokyo, Komaba, Meguro 153-8902, Tokyo, Japan.
Abstract:
The adsorption of hydrogen on cationic iron clusters, Fen+, at 310 K and its desorption from FenHm+ clusters upon heating were investigated by using thermal desorption spectrometry (TDS) to elucidate the size-dependent hydrogen storage properties. Small clusters (n = 4 and 5) exhibited a higher hydrogen adsorption per Fe atom at 310 K and sequential H2 release at high temperatures. The activation energies for desorption were estimated from the TDS curves, which indicated that Fe4+ and Fe5+ exhibited the strongest H2 binding. The desorption energies of H2 from Fe4Hm+ obtained by density functional theory calculations were consistent with the activation energies. In contrast, no clear sequential release was observed for larger clusters (n = 7-9) because of the weaker binding of H2 molecules to the H-deficient clusters. The reaction path of the adsorption of H2 on Fe7+ from molecular to dissociative adsorption exhibited an energy barrier of about 0.2 eV for the cleavage of the H-H bond. Hence, hydrogen may be trapped as a H2 molecule in Fe7H2+.
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