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Updated: May 12, 2025

Hyperspectral Imaging as a Tool to Study Optical Anisotropy in Lanthanide-Based Molecular Single Crystals
Published on: April 14, 2020
Double Aromaticity and Inverse-Sandwich Structures in Double-Lanthanide-Doped Boron Clusters: Excitation from
Xun-Jie Mei1, Huai-Qian Wang1,2, Jia-Ming Zhang2
1College of Engineering, Huaqiao University, Quanzhou 362021, China.
Abstract:
To elucidate the size-dependent formation mechanism of inverse-sandwich structures in double-lanthanide-doped boron clusters, we systematically investigated the geometric and electronic properties of M2B10- (M = La, Ce, Pr, and Nd) clusters through density functional theory calculations. Theoretical optimizations reveal that all studied systems adopt inverse-sandwich configurations with two lanthanide atoms sandwiching a B9 ring at n = 9. Theoretical binding energies (BEs) show excellent agreement with experimental values (BEs < 5 eV), providing the robust validation of the predicted inverse-sandwich configurations. Adaptive natural density partitioning (AdNDP) analysis uncovers a unique bonding mechanism involving f → d electronic excitation in lanthanides, which facilitates the formation of directional d-p δ bonds between metal centers and the boron framework. This electron redistribution simultaneously satisfies the Hückel 4n + 2 rule for both σ- and π-aromaticity, establishing the first example of double aromaticity in lanthanide-doped clusters. The excitation-induced electronic configuration (f + d - 1) dictates the ground-state spin multiplicity while reducing metal-boron binding energy. This energy penalty explains the structural transition from inverse-sandwich to conventional geometries at n = 10, as evidenced by comparative studies on La2B10-. Our findings establish n = 9 as the critical size limit for inverse-sandwich stability in double-lanthanide systems and propose a general electronic design rule for tailoring aromaticity in heavy metal-doped clusters.
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