Kinetics of Cycloaddition of CO2 to Ethylene Oxide in Ionic Liquids: A Conceptual Density Functional Theory Approach
José Muñoz-Espinoza1, Renato Contreras1
1Theoretical Chemistry Group, Department of Chemistry, Faculty of Sciences, University of Chile, Box 653-SCL, Santiago 1025000, Chile.
Abstract:
We briefly discuss herein the molecular mechanism for the cycloaddition of CO2 to ethylene oxide in a wide variety of ionic liquids (ILs) that include classical ILs based on ammonium, imidazolium, and pyridinium cations and combinations that incorporate (poly)-nuclear ILs as well as ILs based on inorganic complexes. We show that even with strong structural differences, all five cases examined share a common activation step characterized by the formation of a precursor complex followed by its activation toward a common rate-determining-step transition state structure. We additionally show that all these cases can nicely be described within a common quantum mechanical model based on the conceptual density functional theory. It is found that the dominating effect of the activation hardness, Δη‡, drives the intrinsic reaction barrier in all five cases examined, a result that seems to be governed by the maximum hardness principle, an empirical rule that appears to still remain valid for its application in the chemistry in complex liquids: a promising and stimulating result.
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