Literature DB >> 12440918

Pd0 mechanism of palladium-catalyzed cyclopropanation of alkenes by CH2N2: a DFT study.

Bernd F Straub1.   

Abstract

Pathways for the reaction of ethene with diazomethane to cyclopropane and dinitrogen catalyzed by Pd(0) complexes have been investigated at the B3LYP level of theory. The computed Gibbs free activation energy of 71.7 kJ mol(-1) for the most favorable catalytic cycle is by far lower than previously reported computed barriers for Pd(II)-catalyzed pathways of this reaction and is now in the range of experimental expectations. Pd(eta(2)-C(2)H(4))(2) is predicted to be the resting state of the catalyst and the product of a Pd(OAc)(2) precatalyst reduction. The Pd(0) ethene complex is in equilibrium with Pd(eta(2)-C(2)H(4))(kappaC-CH(2)N(2)), from which N(2) is eliminated in the rate-determining step. The resulting carbene complex (eta(2)-C(2)H(4))Pd=CH(2) reacts without intrinsic barrier with CH(2)N(2) to Pd(eta(2)-C(2)H(4))(2) and N(2) and with ethene to the palladacyclobutane (eta(2)-C(2)H(4))Pd(II)[kappaC(1),kappaC(3)-(CH(2))(3)]. The N(2) elimination from Pd(eta(2)-C(2)H(4))(2)(kappaC-CH(2)N(2)) to (eta(2)-C(2)H(4))(2)Pd=CH(2) leads to an overall Gibbs free activation energy of 84.2 kJ mol(-1). The intramolecular rearrangement of (eta(2)-C(2)H(4))(2)Pd=CH(2) to the palladacyclobutane (eta(2)-C(2)H(4))Pd(II)[kappaC(1),kappaC(3)-(CH(2))(3)] and the subsequent reductive elimination of cyclopropane are facile. At the BP86 level of theory, Pd(0) preferentially coordinates three ligands. Pd(eta(2)-C(2)H(4))(3) is predicted to be the resting state, and the N(2) elimination from the model complex Pd(eta(2)-C(2)H(4))(2)(kappaC-CH(2)N(2)) is the rate-determining transition state leading to an overall Gibbs free activation energy of 69.4 kJ mol(-1).

Entities:  

Year:  2002        PMID: 12440918     DOI: 10.1021/ja027762+

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  5 in total

1.  Rhodium-catalyzed enantioselective cyclopropanation of electron deficient alkenes.

Authors:  Hengbin Wang; David M Guptill; Adrian Varela Alvarez; Djamaladdin G Musaev; Huw M L Davies
Journal:  Chem Sci       Date:  2013-07       Impact factor: 9.825

2.  Palladium Catalyzed Cyclopropanation of Unsaturated Endoperoxides. A New Peroxide Preserving Reaction.

Authors:  Michael A Emerzian; William Davenport; Jiangao Song; Jim Li; Ihsan Erden
Journal:  Adv Synth Catal       Date:  2009-05-01       Impact factor: 5.837

3.  Metal-Diazo Radicals of α-Carbonyl Diazomethanes.

Authors:  Feifei Li; Longqiang Xiao; Lijian Liu
Journal:  Sci Rep       Date:  2016-03-10       Impact factor: 4.379

4.  Cyclopropanations via Heme Carbenes: Basic Mechanism and Effects of Carbene Substituent, Protein Axial Ligand, and Porphyrin Substitution.

Authors:  Yang Wei; Antonio Tinoco; Viktoria Steck; Rudi Fasan; Yong Zhang
Journal:  J Am Chem Soc       Date:  2018-01-24       Impact factor: 15.419

5.  Synthesis of gem-Difluoro Olefins through C-H Functionalization and β-fluoride Elimination Reactions.

Authors:  Zhen Yang; Mieke Möller; Rene M Koenigs
Journal:  Angew Chem Int Ed Engl       Date:  2020-02-21       Impact factor: 15.336

  5 in total

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