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Updated: Feb 12, 2026

Analysis of Complex Molecules and Their Reactions on Surfaces by Means of Cluster-Induced Desorption/Ionization Mass Spectrometry
Published on: March 1, 2020
Octahedral Coordinated Cluster TaN12 +: Mass Spectrometry Detection, Photodissociation Observation, and Theoretical
Jia-Ming Zhang1, Hao Zheng1, Peng Wang2
1College of Information Science and Engineering, Huaqiao University, Xiamen, China.
Abstract:
The TaNn + cationic clusters were generated via laser ablation and analyzed using time-of-flight (TOF) mass spectrometry. The mass spectrometry experiment identified the TaN12 + cluster as the dominant TaN compound, exhibiting the most intense peak. Photodissociation experiments on the TaN12 + clusters with 266 nm (4.66 eV) photons revealed that the photodissociation fragment ion TaN4 + was dominant in the spectrum. Density functional theory calculations revealed that TaN12 + has an octahedral D4h geometry symmetry with six N2 ligands. The cluster features two distinct TaN bond lengths of 2.16 and 2.22 Å. Orbital analysis uncovers the origin of this asymmetry: the four coplanar N2 ligands are strongly σ-bound and activated, whereas the two axial ones engage via weaker π-interactions. Photodissociation pathway analysis established a reversible relationship between TaN2n + (n = 1 - 6) clusters growth-dissociation processes. Quantitative Hirshfeld charge and charge transfer analyses confirm Ta as a Lewis acid center with N2 ligands functioning as Lewis bases. The spin-density population indicates the presence of antiparallel coupling within the TaN12 + cluster, leading to ferrimagnetism. Interaction region indicator analysis confirms the presence of well-defined coordination bonds between the Ta atom and its ligands.
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