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Updated: Jan 11, 2026

Spatial Separation of Molecular Conformers and Clusters
Published on: January 9, 2014
Stabilization mechanisms in the Li3+ cluster: A quantum Monte Carlo study of electron delocalization and correlation
B G A Brito1, L Cândido2,3, G-Q Hai3
1Departamento de Física, Instituto de Ciências Exatas e Naturais e Educação (ICENE), Universidade Federal do Triângulo Mineiro-UFTM, 38064-200 Uberaba, MG, Brazil.
Abstract:
We investigate the role of electron delocalization and many-body correlation effects in the energetic stabilization of the Li3+ cluster. Using density functional theory and fixed-node diffusion Monte Carlo calculations, we analyze how symmetry, bond length, and angular distortions influence electron distribution and bonding. In the equilateral triangular (D3h) geometry, molecular orbital symmetry promotes valence electron delocalization, minimizing Coulomb repulsion. At equilibrium, the delocalization enabled by symmetric molecular orbitals dominates the bonding mechanism. However, at extended bond lengths or under angular distortions, the electron correlation becomes increasingly critical to the atomization energy. Our results offer quantitative insights into the stability of few-electron alkali-metal clusters and establish a framework for understanding electronic behavior in low-dimensional metallic systems.
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