Bin Huo, Ning-Zheng Li, Zi-Yu Li, Qing-Yu Liu, Sheng-Gui He
Investigated the structural and electronic properties of oxygen-deficient Ta4On - (n = 0-9) clusters using cryogenic photoelectron imaging spectroscopy and density functional theory calculations. Electron affinities of neutral Ta4On (n = 0-4) were measured; symmetric Ta-Ta stretching frequencies were measured for Ta4O2 - and Ta4O4 -; an asymmetric Ta-Ta stretching was identified for Ta4O3 -. Oxygen atoms preferentially occupy bridging sites on the tetrahedral Ta4 framework core; a pronounced odd-even alternation in the adiabatic detachment energies was observed for n = 1-4.
The structural and electronic properties of oxygen-deficient Ta4On - (n = 0-9) clusters were investigated using cryogenic photoelectron imaging spectroscopy in combination with density functional theory calculations. The electron affinities of neutral Ta4On (n = 0-4) are measured to be 1.107 ± 0.005, 1.340 ± 0.005, 1.302 ± 0.005, 1.485 ± 0.005 and 1.419 ± 0.005 eV, respectively. The symmetric Ta-Ta stretching frequencies are measured as 169 cm-1 for Ta4O2 - and 145 cm-1 for Ta4O4 -, while an asymmetric Ta-Ta stretching at 129 cm-1 was identified for Ta4O3 -. Structural analysis reveals oxygen atoms preferentially occupy bridging sites on the tetrahedral Ta4 framework core, with terminal coordination becoming favorable only at relatively high oxygen content. A pronounced odd-even alternation in the adiabatic detachment energies was observed for n = 1-4. Orbital delocalization index analysis reveals that this oscillation originates from variations in the localization of the highest occupied molecular orbital, leading to stronger electron binding in odd-n clusters. Benchmarking against high-quality spectroscopic data shows that the BP86 functional yields a robust description of the electronic structure of these clusters, whereas commonly employed hybrid functionals show significant deviations.