Literature DB >> 29243918

Frustrated Lewis Pairs Catalyzed Asymmetric Metal-Free Hydrogenations and Hydrosilylations.

Wei Meng1,2, Xiangqing Feng1,2, Haifeng Du1,2.   

Abstract

The use of frustrated Lewis pairs is an extremely important approach to metal-free hydrogenations. In contrast to the rapid growth of catalytic reactions, asymmetric hydrogenations are far less developed due to a severe shortage of readily available chiral frustrated Lewis pair catalysts with high catalytic activities and selectivities. Unlike the stable Lewis base component of frustrated Lewis pairs, the moisture-sensitive boron Lewis acid component is difficult to prepare. The development of convenient methods for the quick construction of chiral boron Lewis acids is therefore of great interest. In this Account, we summarize our recent studies on frustrated Lewis pair-catalyzed, asymmetric metal-free hydrogenations and hydrosilylations. To address the shortage of highly active and selective catalysts, we developed a novel strategy for the in situ preparation of chiral boron Lewis acids by the hydroboration of chiral dienes or diynes with Piers' borane without further purification, which allows chiral dienes or diynes to act like ligands. This strategy ensures the construction of a useful toolbox of catalysts for asymmetric metal-free hydrogenations and hydrosilylations is rapid and operationally simple. Another strategy is using combinations of readily available Lewis acids and bases containing hydridic and acidic hydrogen atoms, respectively, as a novel type of frustrated Lewis pairs. Such systems provide a great opportunity for using simple chiral Lewis bases as the origins of asymmetric induction. With chiral diene-derived boron Lewis acids as catalysts, a broad range of unsaturated compounds, such as imines, silyl enol ethers, 2,3-disubstituted quinoxalines, and polysubstituted quinolines, are all viable substrates for asymmetric metal-free hydrogenations and give the corresponding products in good yields with high enantioselectivities and/or stereoselectivities. These chiral catalysts are very effective for bulky substrates, and the substrate scope for these metal-free asymmetric hydrogenations has been dramatically expanded. Chiral alkenylboranes were designed to enhance the rigidity of the framework and modify the Lewis acidity through the resulting double bonds. Frustrated Lewis pairs of chiral alkenylboranes and phosphines are a class of highly effective catalysts for asymmetric Piers-type hydrosilylations of 1,2-dicarbonyl compounds, and they give the desired products in high yields and enantioselectivities. Moreover, asymmetric transfer hydrogenations of imines and quinoxalines with ammonia borane as the hydrogen source have been achieved with frustrated Lewis pair of Piers' borane and (R)-tert-butylsulfinamide as the catalyst. Mechanistic studies have suggested that the hydrogen transfer occurs via an 8-membered ring transition state, and regeneration of the reactive frustrated Lewis pair with ammonia borane occurs through a concerted 6-membered ring transition state.

Entities:  

Year:  2017        PMID: 29243918     DOI: 10.1021/acs.accounts.7b00530

Source DB:  PubMed          Journal:  Acc Chem Res        ISSN: 0001-4842            Impact factor:   22.384


  9 in total

1.  Carbon dioxide reduction by an Al-O-P frustrated Lewis pair.

Authors:  Lucas Wickemeyer; Niklas Aders; Andreas Mix; Beate Neumann; Hans-Georg Stammler; Jorge J Cabrera-Trujillo; Israel Fernández; Norbert W Mitzel
Journal:  Chem Sci       Date:  2022-06-02       Impact factor: 9.969

2.  Dehydration in water: frustrated Lewis pairs directly catalyzed allylization of electron-rich arenes and allyl alcohols.

Authors:  Hua Zhang; Xiao-Yu Zhan; Yu Dong; Jian Yang; Shuai He; Zhi-Chuan Shi; Xiao-Mei Zhang; Ji-Yu Wang
Journal:  RSC Adv       Date:  2020-04-30       Impact factor: 4.036

3.  Controlled and Efficient Polymerization of Conjugated Polar Alkenes by Lewis Pairs Based on Sterically Hindered Aryloxide-Substituted Alkylaluminumitle.

Authors:  Xiaojun Wang; Yixin Zhang; Miao Hong
Journal:  Molecules       Date:  2018-02-17       Impact factor: 4.411

4.  Computational Prediction of Ammonia-Borane Dehydrocoupling and Transfer Hydrogenation of Ketones and Imines Catalyzed by SCS Nickel Pincer Complexes.

Authors:  Bing Qiu; Wan Wang; Xinzheng Yang
Journal:  Front Chem       Date:  2019-09-13       Impact factor: 5.221

5.  B(C6F5)3-catalyzed dehydrogenative cyclization of N-tosylhydrazones and anilines via a Lewis adduct: a combined experimental and computational investigation.

Authors:  Murali Mohan Guru; Sriman De; Sayan Dutta; Debasis Koley; Biplab Maji
Journal:  Chem Sci       Date:  2019-07-05       Impact factor: 9.825

6.  Mechanistic insight into the catalytic hydrogenation of nonactivated aldehydes with a Hantzsch ester in the presence of a series of organoboranes: NMR and DFT studies.

Authors:  Go Hamasaka; Hiroaki Tsuji; Masahiro Ehara; Yasuhiro Uozumi
Journal:  RSC Adv       Date:  2019-04-02       Impact factor: 3.361

7.  FLP-Catalyzed Transfer Hydrogenation of Silyl Enol Ethers.

Authors:  Imtiaz Khan; Benjamin G Reed-Berendt; Rebecca L Melen; Louis C Morrill
Journal:  Angew Chem Int Ed Engl       Date:  2018-08-24       Impact factor: 15.336

8.  B(C6F5)3-Catalyzed C-C Coupling of 1,4-Naphthoquinones with the C-3 Position of Indole Derivatives in Water.

Authors:  Yu Dong; Hua Zhang; Jian Yang; Shuai He; Zhi-Chuan Shi; Xiao-Mei Zhang; Ji-Yu Wang
Journal:  ACS Omega       Date:  2019-12-03

9.  Controlled partial transfer hydrogenation of quinolines by cobalt-amido cooperative catalysis.

Authors:  Maofu Pang; Jia-Yi Chen; Shengjie Zhang; Rong-Zhen Liao; Chen-Ho Tung; Wenguang Wang
Journal:  Nat Commun       Date:  2020-03-06       Impact factor: 14.919

  9 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.