4.8 Article

Membrane-Grafted Asymmetric Organocatalyst for an Integrated Synthesis-Separation Platform

期刊

ACS CATALYSIS
卷 8, 期 8, 页码 7430-7438

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acscatal.8b01706

关键词

enantioselective catalysis; polybenzimidazole; recycling; organic solvent nanofiltration; surface modification; Michael addition; catalytic membrane reactor; cinchona-squaramide

资金

  1. Janos Bolyai Research Scholarship of the Hungarian Academy of Sciences
  2. Biotechnology and Biological Sciences Research Council [BB/L013770/1]
  3. Central Hungarian Operational Programme [KMOP-4.2.1/B-10-2011-0002]
  4. BBSRC [BB/L013770/1] Funding Source: UKRI

向作者/读者索取更多资源

In this work we introduce a sustainable membrane-based synthesis separation platform for enantioselective organocatalysis. An azido derivatized cinchona-squaramide bifunctional catalyst was synthesized and subsequently grafted to the surface of a polybenzimidazole-based nanofiltration membrane. The favorable effect of the covalent grafting-due to the change in geometry and increased secondary interactions on the catalytic activity due to conformational changes was confirmed by quantum chemical calculations. Asymmetric Michael and aza-Michael reactions of 1,3-dicarbonyl and indole, pyrazole, and triazole derivatives to beta-nitrostyrene were performed with as high as 99% enantiomeric excess. This report on the enantioselective aza-Michael reaction of pyrazoles and triazoles opens new frontiers in the application of squaramide-based cinchona catalysts. A catalytic membrane cascade reactor was developed for an integrated synthesis purification process allowing at least 98% product and substrate recovery, and quantitative in situ solvent recycling. The sustainability of the synthetic methodology was assessed through E-factor and carbon footprint.

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