4.6 Article

Sulfonated chiral covalent organic frameworks-mediated asymmetric Michael addition of acetone to β-nitroolefins

Journal

CHEMICAL ENGINEERING SCIENCE
Volume 260, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ces.2022.117933

Keywords

Asymmetric Michael addition; Covalent organic framework; Heterogeneous catalysis; Immobilization; Enantioselectivity

Funding

  1. National Natural Science Foundation of China [21978208]
  2. Open Program of Tianjin Key Laboratory of Green Chemical Engineering Process Engineering, Tiangong University [GCEPE20190102]
  3. China Postdoctoral Science Foundation [2020T130465]
  4. Natural Science Foundation of Hebei Province [B2019201341]
  5. Hebei Provincial Department of Science and Technology [216Z1403G]

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In this study, a sulfonated chiral covalent organic framework (SDA-CCOF) was successfully synthesized and used as a catalyst for the asymmetric Michael addition reaction of acetone with nitrostyrene. The catalyst exhibited good catalytic performance with a high enantioselectivity of 90%. It also demonstrated high enantioselectivity for diverse substrates.
Organo-catalysts for the Michael addition reaction of nitrostyrene with acetone are essential to improve the efficiency and enantioselectivity, and their recycling also faces great challenges. Herein, a sulfonated chiral covalent organic framework (SDA-CCOF) was successfully constructed by post modification of the pre-prepared sulfonated COF with chiral 1, 2-diaminocyclohexane via N-sulfonylation. The catalytic performance was evaluated by the asymmetric Michael addition reaction of beta-nitrostyrene with acetone. Under the optimized conditions, 81% conversion of beta-nitrostyrene and 90% enantioselectivity were achieved. The generality of the catalyst was examined for diverse substrates with 84-96% enantioselectivity. Moreover, a possible catalytic mechanism of the Michael reaction by SDA-CCOF was speculated based on the characterization results and previous reports. This novel catalyst may provide inspirations for the development of CCOF and the loading of organo-catalysts. (c) 2022 Elsevier Ltd. All rights reserved.

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