Mechanism of Ni N-heterocyclic carbene catalyst for C-O bond hydrogenolysis of diphenyl ether: A density functional study

© 2014 The Royal Society of Chemistry. Catalysts for aromatic C-O bond activation can potentially be used for the lignin degradation process. We investigated the mechanisms of C-O bond hydrogenolysis of diphenyl ether (PhOPh) by the nickel N-heterocyclic carbene (Ni-SIPr) complex to produce benzene...

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Main Authors: Boodsarin Sawatlon, Taveechai Wititsuwannakul, Yuthana Tantirungrotechai, Panida Surawatanawong
Other Authors: Mahidol University
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Published: 2018
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spelling th-mahidol.336062018-11-09T09:05:05Z Mechanism of Ni N-heterocyclic carbene catalyst for C-O bond hydrogenolysis of diphenyl ether: A density functional study Boodsarin Sawatlon Taveechai Wititsuwannakul Yuthana Tantirungrotechai Panida Surawatanawong Mahidol University Thammasat University Chemistry © 2014 The Royal Society of Chemistry. Catalysts for aromatic C-O bond activation can potentially be used for the lignin degradation process. We investigated the mechanisms of C-O bond hydrogenolysis of diphenyl ether (PhOPh) by the nickel N-heterocyclic carbene (Ni-SIPr) complex to produce benzene and phenol as products. Our calculations revealed that diphenyl ether is not only a substrate, but also serves as a ligand to stabilize the Ni-SIPr complex. The Ni(SIPr)(η6-PhOPh) complex is initially formed before rearranging to Ni(SIPr)(η2-PhOPh), the active species for C-O bond activation. The catalytic reaction has three steps: (i) oxidative addition of Ni(SIPr)(η2-PhOPh) to form [Ni(SIPr)(OPh)(Ph)]0, (ii) σ-complex-assisted metathesis, in which H2 binds to the nickel to form [Ni(SIPr)(OPh)(Ph)(H2)]0, and then benzene (or phenol) is eliminated, and (iii) reductive elimination of phenol (or benzene) and the binding of PhOPh to regenerate Ni(SIPr)(η2-PhOPh). As the rate determining step is the oxidative addition step (+24 kcal mol-1), we also calculated the free energy barriers for the oxidative addition of diaryl ether containing a trifluoromethyl electron withdrawing group (PhOC6H4CF3) and found that C-O bond activation at the carbon adjacent to the aryl ring that contains the electron withdrawing substituent is preferred. This is in agreement with the experimental results, in that the major products are phenol and trifluoromethylbenzene. Moreover, the hydrogenation of benzene via Ni(SIPr)(η2-C6H6) requires a high energy barrier (+39 kcal mol-1); correspondingly, the hydrogenation products, e.g. cyclohexane and cyclohexadiene, were not observed in the experiment. Understanding the reaction mechanisms of the nickel catalysts for C-O bond hydrogenolysis of diphenyl ether will guide the development of catalytic systems for aromatic C-O bond activation to achieve the highest possible selectivity and efficiency. 2018-11-09T02:05:05Z 2018-11-09T02:05:05Z 2014-12-28 Article Dalton Transactions. Vol.43, No.48 (2014), 18123-18133 10.1039/c4dt02374a 14779234 14779226 2-s2.0-84911905605 https://repository.li.mahidol.ac.th/handle/123456789/33606 Mahidol University SCOPUS https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=84911905605&origin=inward
institution Mahidol University
building Mahidol University Library
continent Asia
country Thailand
Thailand
content_provider Mahidol University Library
collection Mahidol University Institutional Repository
topic Chemistry
spellingShingle Chemistry
Boodsarin Sawatlon
Taveechai Wititsuwannakul
Yuthana Tantirungrotechai
Panida Surawatanawong
Mechanism of Ni N-heterocyclic carbene catalyst for C-O bond hydrogenolysis of diphenyl ether: A density functional study
description © 2014 The Royal Society of Chemistry. Catalysts for aromatic C-O bond activation can potentially be used for the lignin degradation process. We investigated the mechanisms of C-O bond hydrogenolysis of diphenyl ether (PhOPh) by the nickel N-heterocyclic carbene (Ni-SIPr) complex to produce benzene and phenol as products. Our calculations revealed that diphenyl ether is not only a substrate, but also serves as a ligand to stabilize the Ni-SIPr complex. The Ni(SIPr)(η6-PhOPh) complex is initially formed before rearranging to Ni(SIPr)(η2-PhOPh), the active species for C-O bond activation. The catalytic reaction has three steps: (i) oxidative addition of Ni(SIPr)(η2-PhOPh) to form [Ni(SIPr)(OPh)(Ph)]0, (ii) σ-complex-assisted metathesis, in which H2 binds to the nickel to form [Ni(SIPr)(OPh)(Ph)(H2)]0, and then benzene (or phenol) is eliminated, and (iii) reductive elimination of phenol (or benzene) and the binding of PhOPh to regenerate Ni(SIPr)(η2-PhOPh). As the rate determining step is the oxidative addition step (+24 kcal mol-1), we also calculated the free energy barriers for the oxidative addition of diaryl ether containing a trifluoromethyl electron withdrawing group (PhOC6H4CF3) and found that C-O bond activation at the carbon adjacent to the aryl ring that contains the electron withdrawing substituent is preferred. This is in agreement with the experimental results, in that the major products are phenol and trifluoromethylbenzene. Moreover, the hydrogenation of benzene via Ni(SIPr)(η2-C6H6) requires a high energy barrier (+39 kcal mol-1); correspondingly, the hydrogenation products, e.g. cyclohexane and cyclohexadiene, were not observed in the experiment. Understanding the reaction mechanisms of the nickel catalysts for C-O bond hydrogenolysis of diphenyl ether will guide the development of catalytic systems for aromatic C-O bond activation to achieve the highest possible selectivity and efficiency.
author2 Mahidol University
author_facet Mahidol University
Boodsarin Sawatlon
Taveechai Wititsuwannakul
Yuthana Tantirungrotechai
Panida Surawatanawong
format Article
author Boodsarin Sawatlon
Taveechai Wititsuwannakul
Yuthana Tantirungrotechai
Panida Surawatanawong
author_sort Boodsarin Sawatlon
title Mechanism of Ni N-heterocyclic carbene catalyst for C-O bond hydrogenolysis of diphenyl ether: A density functional study
title_short Mechanism of Ni N-heterocyclic carbene catalyst for C-O bond hydrogenolysis of diphenyl ether: A density functional study
title_full Mechanism of Ni N-heterocyclic carbene catalyst for C-O bond hydrogenolysis of diphenyl ether: A density functional study
title_fullStr Mechanism of Ni N-heterocyclic carbene catalyst for C-O bond hydrogenolysis of diphenyl ether: A density functional study
title_full_unstemmed Mechanism of Ni N-heterocyclic carbene catalyst for C-O bond hydrogenolysis of diphenyl ether: A density functional study
title_sort mechanism of ni n-heterocyclic carbene catalyst for c-o bond hydrogenolysis of diphenyl ether: a density functional study
publishDate 2018
url https://repository.li.mahidol.ac.th/handle/123456789/33606
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