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      A General Ligand Design for Gold Catalysis allowing Ligand-Directed Anti Nucleophilic Attack of Alkynes

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          Abstract

          Most homogenous gold catalyses demand ≥0.5 mol % catalyst loading. Due to the high cost of gold, these reactions are unlikely to be applicable in medium or large scale applications. Here we disclose a novel ligand design based on the privileged biphenyl-2-phosphine framework that offers a potentially general approach to dramatically lowering catalyst loading. In this design, an amide group at the 3’ position of the ligand framework directs and promotes nucleophilic attack at the ligand gold complex-activated alkyne, which is unprecedented in homogeneous gold catalysis considering the spatial challenge of using ligand to reach antiapproaching nucleophile in a linear P-Au-alkyne centroid structure. With such a ligand, the gold(I) complex becomes highly efficient in catalyzing acid addition to alkynes, with a turnover number up to 99,000. Density functional theory calculations support the role of the amide moiety in directing the attack of carboxylic acid via hydrogen bonding.

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          Most cited references63

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          Generalized Gradient Approximation Made Simple.

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            Ligand effects in homogeneous Au catalysis.

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              Alternative synthetic methods through new developments in catalysis by gold.

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                Author and article information

                Journal
                101528555
                37539
                Nat Commun
                Nat Commun
                Nature communications
                2041-1723
                27 June 2014
                07 April 2014
                2014
                07 October 2014
                : 5
                : 3470
                Affiliations
                [a ]Department of Chemistry & Biochemistry, University of California, Santa Barbara, CA 93106
                [b ]State Key Laboratory of Organometallic Chemistry, Shanghai Institute of Organic Chemistry, Ling Ling Road 345, Shanghai 200032, China
                Author notes
                Article
                NIHMS568869
                10.1038/ncomms4470
                4119785
                24704803
                10f2104d-bd41-4330-b55b-fcbf0b86a878
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