Bronsted Acid-Catalyzed Intramolecular Nucleophilic Substitution of the Hydroxyl Group in Stereogenic Alcohols with Chirality Transfer

被引:67
作者
Bunrit, Anon [1 ]
Dahlstrand, Christian [1 ]
Olsson, Sandra K. [1 ]
Srifa, Pemikar [1 ]
Huang, Genping [2 ]
Orthaber, Andreas [3 ]
Sjoberg, Per J. R. [1 ]
Biswas, Srijit [1 ]
Himo, Fahmi [2 ]
Samec, Joseph S. M. [1 ]
机构
[1] Uppsala Univ, BMC, Dept Chem, S-75123 Uppsala, Sweden
[2] Stockholm Univ, Dept Organ Chem, S-10691 Stockholm, Sweden
[3] Uppsala Univ, Angstrom Labs, Dept Chem, S-75120 Uppsala, Sweden
基金
瑞典研究理事会;
关键词
ALLYLIC ALCOHOLS; ALKYLATION; MECHANISM; HYDROGENATION; EFFICIENCY; AMINATION; STRATEGY; IMINES;
D O I
10.1021/jacs.5b02013
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The hydroxyl group of enantioenriched benzyl, propargyl, allyl, and alkyl alcohols has been intramolecularly displaced by uncharged O-, N-, and S-centered nucleophiles to yield enantioenriched tetrahydrofuran, pyrrolidine, and tetrahydrothiophene derivatives with phosphinic acid catalysis. The five-membered heterocyclic products are generated in good to excellent yields, with high degree of chirality transfer, and water as the only side-product. Racemization experiments show that phosphinic acid does not promote S(N)1 reactivity. Density functional theory calculations corroborate a reaction pathway where the phosphinic acid operates as a bifunctional catalyst in the intramolecular substitution reaction. In this mechanism, the acidic proton of the phosphinic acid protonates the hydroxyl group, enhancing the leaving group ability. Simultaneously, the oxo group of phosphinic acid operates as a base abstracting the nucleophilic proton and thus enhancing the nucleophilicity. This reaction will open up new atom efficient techniques that enable alcohols to be used as nucleofuges in substitution reactions in the future.
引用
收藏
页码:4646 / 4649
页数:4
相关论文
共 42 条
[1]   Chirality Transfer in Au-Catalyzed Cyclization Reactions of Monoallylic Diols: Selective Access to Specific Enantiomers Based on Olefin Geometry [J].
Aponick, Aaron ;
Biannic, Berenger .
ORGANIC LETTERS, 2011, 13 (06) :1330-1333
[2]   The Efficiency of the Metal Catalysts in the Nucleophilic Substitution of Alcohols is Dependent on the Nucleophile and Not on the Electrophile [J].
Biswas, Srijit ;
Samec, Joseph S. M. .
CHEMISTRY-AN ASIAN JOURNAL, 2013, 8 (05) :974-981
[3]   New and Efficient Iron Halide Mediated Synthesis of Alkenyl Halides through Coupling of Alkynes and Alcohols [J].
Biswas, Srijit ;
Maiti, Sukhendu ;
Jana, Umasish .
EUROPEAN JOURNAL OF ORGANIC CHEMISTRY, 2009, 2009 (14) :2354-2359
[4]  
Bjerum J., 1958, STABILITY CONSTANTS
[5]   Catalytic Carbonyl Addition through Transfer Hydrogenation: A Departure from Preformed Organometallic Reagents [J].
Bower, John F. ;
Kim, In Su ;
Patman, Ryan L. ;
Krische, Michael J. .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2009, 48 (01) :34-46
[6]   Asymmetric Organocatalysis Combined with Metal Catalysis: Concept, Proof of Concept, and Beyond [J].
Chen, Dian-Feng ;
Han, Zhi-Yong ;
Zhou, Xiao-Le ;
Gong, Liu-Zhu .
ACCOUNTS OF CHEMICAL RESEARCH, 2014, 47 (08) :2365-2377
[7]   Key green chemistry research areas - a perspective from pharmaceutical manufacturers [J].
Constable, David J. C. ;
Dunn, Peter J. ;
Hayler, John D. ;
Humphrey, Guy R. ;
Leazer, Johnnie L., Jr. ;
Linderman, Russell J. ;
Lorenz, Kurt ;
Manley, Julie ;
Pearlman, Bruce A. ;
Wells, Andrew ;
Zaks, Aleksey ;
Zhang, Tony Y. .
GREEN CHEMISTRY, 2007, 9 (05) :411-420
[8]   Chemical routes for the transformation of biomass into chemicals [J].
Corma, Avelino ;
Iborra, Sara ;
Velty, Alexandra .
CHEMICAL REVIEWS, 2007, 107 (06) :2411-2502
[9]   Dehydrogenation as a Substrate-Activating Strategy in Homogeneous Transition-Metal Catalysis [J].
Dobereiner, Graham E. ;
Crabtree, Robert H. .
CHEMICAL REVIEWS, 2010, 110 (02) :681-703
[10]  
Edmundson R. S., 1988, DICT ORGANOPHOSPHORO