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用于离子对催化的手性二硒代磷酸:一种增强质子供体和质子受体性质的新方法。

Chiral Diselenophosphoric Acids for Ion Pair Catalysis: A Novel Approach to Enhance Both Proton Donating and Proton Accepting Properties.

作者信息

Eder Johannes, Antonov Alexander S, Tupikina Elena Yu, Gschwind Ruth M

机构信息

Institute of Organic Chemistry, University of Regensburg, D-93053, Regensburg, Germany.

Institute of Chemistry, St. Petersburg State University, 198504, St. Petersburg, Russian Federation.

出版信息

Chemistry. 2024 Aug 6;30(44):e202401793. doi: 10.1002/chem.202401793. Epub 2024 Jul 17.

Abstract

The activation of poorly reactive substrates via strong chiral acids is a central topic in asymmetric ion pair catalysis these days. Despite highly successful scaffolds such as N-triflylphosphoramides, these catalysts either lack C2-symmetry or provide multiple H-bond acceptor sites, leading to lower ee values for certain reactions. We present BINOL-based diselenophosphoric acids (DSA) as an extremely promising alternative. Using an intertwined approach of synthesis and NMR studies, we developed a synthetic approach to DSA with up to 98 % NMR yield. The obtained acids provide both very high proton donor and proton acceptor properties, a bifunctionality, which is key to catalytic applications. Indeed, first reactivity test proved the much higher acidity of DSA and its ability to initiate Mukaiyama-Mannich reaction and protodesilylation of silyl ethers. Together with their C2-symmetry, the single donor and single acceptor situation, the decreased tendency of self-association, and the straightforward synthesis with potential 3,3'-substitution, the DSA provide all features ideal for the further development of ion pair catalysis.

摘要

如今,通过强手性酸来活化低反应性底物是不对称离子对催化领域的一个核心课题。尽管有诸如N-三氟甲磺酰基磷酰胺等非常成功的催化剂骨架,但这些催化剂要么缺乏C2对称性,要么提供多个氢键受体位点,导致某些反应的对映体过量值较低。我们提出基于联萘酚的二硒代磷酸(DSA)作为一种极有前景的替代物。通过合成与核磁共振研究相结合的方法,我们开发了一种合成DSA的方法,核磁共振产率高达98%。所得到的酸同时具有非常高的质子供体和质子受体性质,这种双功能性是催化应用的关键。事实上,首次反应性测试证明了DSA具有更高的酸度以及引发 Mukaiyama-Mannich 反应和硅醚去硅基化反应的能力。连同它们的C2对称性、单一供体和单一受体的情况、自缔合趋势的降低以及具有潜在3,3'-取代的直接合成方法,DSA具备离子对催化进一步发展所需的所有理想特性。

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