Literature DB >> 30254163

Beyond the classical thermodynamic contributions to hydrogen atom abstraction reactivity.

Daniel Bím1,2, Mauricio Maldonado-Domínguez1, Lubomír Rulíšek2, Martin Srnec3.   

Abstract

Hydrogen atom abstraction (HAA) reactions are cornerstones of chemistry. Various (metallo)enzymes performing the HAA catalysis evolved in nature and inspired the rational development of multiple synthetic catalysts. Still, the factors determining their catalytic efficiency are not fully understood. Herein, we define the simple thermodynamic factor η by employing two thermodynamic cycles: one for an oxidant (catalyst), along with its reduced, protonated, and hydrogenated form; and one for the substrate, along with its oxidized, deprotonated, and dehydrogenated form. It is demonstrated that η reflects the propensity of the substrate and catalyst for (a)synchronicity in concerted H+/e- transfers. As such, it significantly contributes to the activation energies of the HAA reactions, in addition to a classical thermodynamic (Bell-Evans-Polanyi) effect. In an attempt to understand the physicochemical interpretation of η, we discovered an elegant link between η and reorganization energy λ from Marcus theory. We discovered computationally that for a homologous set of HAA reactions, λ reaches its maximum for the lowest |η|, which then corresponds to the most synchronous HAA mechanism. This immediately implies that among HAA processes with the same reaction free energy, ΔG 0, the highest barrier (≡ΔG ≠) is expected for the most synchronous proton-coupled electron (i.e., hydrogen) transfer. As proof of concept, redox and acidobasic properties of nonheme FeIVO complexes are correlated with activation free energies for HAA from C-H and O-H bonds. We believe that the reported findings may represent a powerful concept in designing new HAA catalysts.

Entities:  

Keywords:  acidity constant; asynchronicity factor; hydrogen atom transfer; reduction potential; reorganization energy

Year:  2018        PMID: 30254163      PMCID: PMC6217389          DOI: 10.1073/pnas.1806399115

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  27 in total

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2.  A Simple Marcus-Theory Type Model for Hydrogen Atom Transfer/Proton-Coupled Electron Transfer.

Authors:  James M Mayer
Journal:  J Phys Chem Lett       Date:  2011       Impact factor: 6.475

Review 3.  Biochemistry and theory of proton-coupled electron transfer.

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4.  Predicting organic hydrogen atom transfer rate constants using the Marcus cross relation.

Authors:  Jeffrey J Warren; James M Mayer
Journal:  Proc Natl Acad Sci U S A       Date:  2010-03-09       Impact factor: 11.205

5.  Proton-coupled electron transfer versus hydrogen atom transfer: generation of charge-localized diabatic states.

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Journal:  J Phys Chem A       Date:  2011-02-25       Impact factor: 2.781

6.  Oxoiron(IV) Tetramethylcyclam Complexes with Axial Carboxylate Ligands: Effect of Tethering the Carboxylate on Reactivity.

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7.  Contra-thermodynamic Hydrogen Atom Abstraction in the Selective C-H Functionalization of Trialkylamine N-CH3 Groups.

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8.  How does tunneling contribute to counterintuitive H-abstraction reactivity of nonheme Fe(IV)O oxidants with alkanes?

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10.  Toward the synthesis of more reactive S = 2 non-heme oxoiron(IV) complexes.

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Journal:  Acc Chem Res       Date:  2015-07-15       Impact factor: 22.384

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5.  Semiempirical method for examining asynchronicity in metal-oxido-mediated C-H bond activation.

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Journal:  Proc Natl Acad Sci U S A       Date:  2021-09-07       Impact factor: 11.205

Review 6.  Free Energies of Proton-Coupled Electron Transfer Reagents and Their Applications.

Authors:  Rishi G Agarwal; Scott C Coste; Benjamin D Groff; Abigail M Heuer; Hyunho Noh; Giovanny A Parada; Catherine F Wise; Eva M Nichols; Jeffrey J Warren; James M Mayer
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7.  Carboxylate Structural Effects on the Properties and Proton-Coupled Electron Transfer Reactivity of [CuO2CR]2+ Cores.

Authors:  Courtney E Elwell; Mukunda Mandal; Caitlin J Bouchey; Lawrence Que; Christopher J Cramer; William B Tolman
Journal:  Inorg Chem       Date:  2019-11-11       Impact factor: 5.165

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9.  Radiolysis generates a complex organosynthetic chemical network.

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10.  Statistical analysis of C-H activation by oxo complexes supports diverse thermodynamic control over reactivity.

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