Mechanistic Investigation of Aromatic C(sp(2))-H and Alkyl C(sp(3))-H Bond Insertion by Gold Carbenes.

J Phys Chem A

Department of Physics and State Key Laboratory of Precision Spectroscopy, ‡School of Chemistry and Molecular Engineering, and §NYU-ECNU Center for Computational Chemistry at New York University Shanghai, East China Normal University, Shanghai 200062, China.

Published: March 2016

It was recently reported that the gold-carbenes have an unprecedented catalysis toward the functionalization of C(sp(2))-H bonds of aromatic compounds. However, the associated mechanisms of C(sp(2))-H bonds inserted by gold-carbenes have not been comprehensively understood. We carried out a detailed mechanistic investigation of gold-carbene insertion into the C(sp(2))-H bond of anisole by means of theoretical calculations and control experiments. It significantly reveals that the aromatic C(sp(2))-H bond activation starts with the electrophilic addition of aromatic carbon toward the carbene carbon and subsequently followed the [1,3]-proton shift to form an enol intermediate. The rearrangement of enol proceeds through the mechanisms of proton transfer assisted by water molecules or enol intermediates, which are supported by our control experiments. It was also found that the C(sp(3))-H insertions of alkanes by gold-carbenes proceed through a concerted process via a three-centered transition state. The further comparison of different mechanisms provides a clear theoretical scheme to account for the difference in aromatic C(sp(2))-H and alkyl C(sp(3))-H bond activation, which is instructive for the further experimental functionalization of C-H bonds by gold-carbenes.

Download full-text PDF

Source
http://dx.doi.org/10.1021/acs.jpca.6b00636DOI Listing

Publication Analysis

Top Keywords

aromatic csp2-h
12
mechanistic investigation
8
csp2-h alkyl
8
alkyl csp3-h
8
csp3-h bond
8
csp2-h bonds
8
csp2-h bond
8
control experiments
8
bond activation
8
csp2-h
6

Similar Publications

Methods to study prFMN-UbiD mediated (de)carboxylation.

Methods Enzymol

November 2024

Manchester Institute of Biotechnology, University of Manchester, Manchester, United Kingdom. Electronic address:

The microbial UbiX-UbiD system facilitates the reversible (de)carboxylation of alpha, beta-unsaturated carboxylic acids, including aromatic compounds. The direct C-H carboxylation presents an attractive method for functionalisation and carbon capture but is difficult to achieve under mild conditions. Hence, UbiD-mediated Csp2-H activation can serve as a versatile tool for developing new biocatalytic routes to transform aryl or alkene compounds and carbon dioxide into valuable commodity chemicals.

View Article and Find Full Text PDF

A successive metal-free TBHP-mediated regioselective C-H functionalization of coumarins toward expedient synthesis of 3-aroyl coumarins is unveiled. The ongoing method conducted through the reaction of either coumarins or coumarin-3-carboxylic acids with aromatic aldehydes. The optimized reaction condition also worked well with benzyl alcohols and styrenes as surrogates for aldehydes, which bear latent carbonyl functionality.

View Article and Find Full Text PDF

Dual Role of the 1,2,3-Triazolium Ring as a Hydrogen-Bond Donor and Anion-π Receptor in Anion-Recognition Processes.

Chemistry

June 2015

Departamento de Química Orgánica, Universidad de Murcia, Campus de Espinardo, 30100, Murcia (Spain).

Several bis(triazolium)-based receptors have been synthesized as chemosensors for anion recognition. The central naphthalene core features two aryltriazolium side-arms. NMR experiments revealed differences between the binding modes of the two triazolium rings: one triazolium ring acts as a hydrogen-bond donor, the other as an anion-π receptor.

View Article and Find Full Text PDF

Manganese-mediated intermolecular arylation of H-phosphinates and related compounds.

Chemistry

September 2014

Department of Chemistry, Box 298860, Texas Christian University, Fort Worth, Texas 76133 (USA), Fax: (+1) 817-257-5851.

The intermolecular radical functionalization of arenes with aryl and alkyl H-phosphinate esters, as well as diphenylphosphine oxide and H-phosphonate diesters, is described. The novel catalytic Mn(II) /excess Mn(IV) system is a convenient and inexpensive solution to directly convert Csp2 H into CP bonds. The reaction can be employed to functionalize P-stereogenic H-phosphinates since it is stereospecific.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!