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March 21, 2026Inorganic Chemistry2 citations

Density Functional Theory Calculation on the Racemization Mechanism of Metal-Induced Axial Chirality: Axial Rotation vs Coordination Geometry Change

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WDWei DongBZBin ZhangBTBo Tu

Key Points

  • To explore the racemization mechanism of metal-induced axial chirality in specific Pt(II) complexes.
  • Utilized density functional theory to simulate racemization pathways.
  • Analyzed four-coordinate square-planar binuclear Pt(II) complexes.
  • Compared energy barriers of racemization with classical references.
  • Identified a novel racemization pathway involving a change from four- to three-coordinate geometry.
  • Calculated racemization energy barriers ranging from 34.0 to 40.4 kcal/mol.
  • Found that the barrier of the complex with bulky groups was lower than that of 1,1'-binaphthol.

Abstract

Axially chiral molecules exhibit atropisomerism, with racemization energy barriers typically governed by steric hindrance. This study investigates the racemization mechanism of metal-induced axial chirality in four-coordinate, square-planar binuclear Pt(II) complexes bearing one cyclometalated sym-tetraacetylethane bridging ligand and two cyclometalated 2-phenylpyridine ligands. Notably, the experimental racemization barrier (34.4 kcal/mol) of the complex featuring four bulky methyl groups at the ortho-positions of its chiral axis is lower than that of the classical axial chiral reference, 1,1′-binaphthol (40.5 kcal/mol), suggesting an alternative racemization pathway beyond a simple axial rotation. Given the relatively low bond dissociation energies of coordination bonds, we employed density functional theory to simulate a novel pathway involving a change in coordination geometry from four- to three-coordinate. The resulting three-coordinate intermediate, which contains a monodentate bridging ligand, can readily undergo single-bond rotation to form its enantiomer. The calculated energy barriers for this process range from 34.0 to 40.4 kcal/mol using various functionals and basis sets. Although these values are somewhat higher than most reported racemization barriers of chiral-at-metal complexes (<32 kcal/mol), they substantiate the feasibility of the proposed mechanism. Consequently, this study offers valuable insights for the rational design of chiral-at-metal complexes.

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Cite This Study

Dong et al. (2026) studied this question.

synapsesocial.com/papers/69be38ca6e48c4981c67961ahttps://doi.org/10.1021/acs.inorgchem.5c05863
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