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Unraveling the Electronic Origin of Selectivity in Ambimodal Transition States with Valence Bond Theory
Caiyun Zhang1, Wei Wu1, Chen Zhou1
1The State Key Laboratory of Physical Chemistry of Solid Surfaces, Fujian Provincial Key Laboratory of Theoretical and Computational Chemistry, and College of Chemistry and Chemical Engineering, Xiamen University, Xiamen, Fujian 361005, China.
Abstract:
Ambimodal reactions are characterized by a single transition structure that bifurcates toward multiple products, posing a fundamental challenge for understanding the origin of product selectivity. While selectivity emerges along post-transition-state pathways, a direct and chemically intuitive connection between transition-state electronic structure and product distribution remains elusive. Here, we demonstrate that product selectivity in ambimodal reactions can be quantitatively correlated with a purely electronic-structure descriptor derived from valence bond (VB) theory. By analyzing the relative weights of VB structures associated with reaction pathways leading to competing products at the ambimodal transition state, a VB-based descriptor is defined to quantify product selectivity. Across a diverse set of ambimodal reactions, this descriptor exhibits a robust linear correlation with the logarithm of the product ratio obtained from experiment or trajectory simulations. These findings reveal that, although selectivity manifests dynamically after the transition state, the transition-state electronic structure contains an intrinsic electronic bias that correlates strongly with product selectivity and influences subsequent pathway bifurcation. The VB analysis thus provides a chemically intuitive perspective on bifurcating reaction pathways and complements existing approaches on ambimodal reactions.
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