4.5 Article

Electron-rich triarylphosphines as nucleophilic catalysts for oxa-Michael reactions

期刊

BEILSTEIN JOURNAL OF ORGANIC CHEMISTRY
卷 17, 期 -, 页码 1689-1697

出版社

BEILSTEIN-INSTITUT
DOI: 10.3762/bjoc.17.117

关键词

Michael acceptor affinity; Michael addition chemistry; organocatalysis; phosphine; solvent-free synthesis

资金

  1. Christian Doppler Research Association (Austrian Federal Ministry for Digital and Economic Affairs)
  2. National Foundation for Research, Technology and Development

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Electron-rich triarylphosphines exhibit superior catalytic performance in oxa-Michael additions, especially for converting poor and intermediate Michael acceptors as well as less acidic alcohols. The affinity between the phosphines and Michael acceptors, as well as the acidity of alcohols, have significant impacts on reaction speed. Additionally, the oxidation stability of the phosphines plays a role in their performance.
Electron-rich triarylphosphines, namely 4-(methoxyphenyl)diphenylphosphine (MMTPP) and tris(4-trimethoxyphenyl)phosphine (TMTPP), outperform commonly used triphenylphosphine (TPP) in catalyzing oxa-Michael additions. A matrix consisting of three differently strong Michael acceptors and four alcohols of varying acidity was used to assess the activity of the three catalysts. All test reactions were performed with 1 mol % catalyst loading, under solvent-free conditions and at room temperature. The results reveal a decisive superiority of TMTPP for converting poor and intermediate Michael acceptors such as acrylamide and acrylonitrile and for converting less acidic alcohols like isopropanol. With stronger Michael acceptors and more acidic alcohols, the impact of the more electron-rich catalysts is less pronounced. The experimental activity trend was rationalized by calculating the Michael acceptor affinities of all phosphine-Michael acceptor combinations. Besides this parameter, the acidity of the alcohol has a strong impact on the reaction speed. The oxidation stability of the phosphines was also evaluated and the most electron-rich TMTPP was found to be only slightly more sensitive to oxidation than TPP. Finally, the catalysts were employed in the oxaMichael polymerization of 2-hydroxyethyl acrylate. With TMTPP polymers characterized by number average molar masses of about 1200 g/mol at room temperature are accessible. Polymerizations carried out at 80 degrees C resulted in macromolecules containing a considerable share of Rauhut-Currier-type repeat units and consequently lower molar masses were obtained.

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