有机催化环氧胺和二氧化碳的aza- payne型重排高效构建恶唑烷酮†

Xin Yuan, Jiahui Ma, Zhenjiang Li, Ziqi Liu, Yanqi Shi, Min Zhang, Yujia Wang, Xin Zou, Sha Li and Kai Guo
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引用次数: 0

摘要

利用环氧胺和二氧化碳(CO2)进行aza- payne型重排反应,为合成5-羟甲基恶唑烷酮提供了一种原子经济的方法。传统上,碱性催化剂主要用于这种转化。在这项工作中,开发了一种无卤化物吡啶酸酯基二元有机催化剂,用于常压下的这种转化。离子对有机催化剂由一个带正电的氢键供体(HBD+)和一个带负电的氢键受体(HBA−)组成。这些HBD+/HBA−离子对催化剂是由弱酸2-、3-和4-羟基吡啶(4-HOP)用超强氮碱(即TBD、MTBD、DBU、TMG和DMAP)脱质子生成的。该反应对恶唑烷酮具有较高的选择性,且生成的环状碳酸盐较少。在负载率为5 mol%、二氧化碳压力为0.1 MPa的条件下,考察了7种离子对催化剂在80℃条件下催化环氧胺1a与二氧化碳的aza- payne型重排反应的性能。其中,TBDH+/4-OP−离子对催化剂表现出最好的性能,在1 h内获得了84%的恶唑烷酮收率。在温和条件下(0.1 MPa CO2, 60-80℃),共合成了14个恶唑烷酮,产率在72% ~ 97%之间。通过核磁共振滴定和控制实验,证实了催化剂的双重活化机理。作为双功能催化剂,离子对通过与N+ -H的h键使环氧胺的氧原子极化,而酚酸阴离子同时激活环氧胺的N -H键,有利于随后二氧化碳的插入。该方法为有机离子对催化剂合成恶唑烷酮提供了一种新的方法,具有广阔的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Organocatalyzed aza-Payne-type rearrangement of epoxy amines and carbon dioxide for efficient construction of oxazolidinones†

The aza-Payne-type rearrangement reaction, employing epoxy amines and carbon dioxide (CO2), offers an atom economical method for synthesizing 5-hydroxymethyl oxazolidinones. Traditionally, alkaline catalysts are primarily utilized for this transformation. In this work, a halide-free pyridinolate based binary organocatalyst was developed for this transformation under atmospheric pressure. The ion pair organocatalyst consists of a positively charged hydrogen-bond donor (HBD+) and a negatively charged hydrogen bond acceptor (HBA). These HBD+/HBA ion pair catalysts were generated through the deprotonation of weakly acidic 2-, 3-, and 4-hydroxy pyridine (4-HOP) using super strong nitrogen bases (i.e. TBD, MTBD, DBU, TMG, and DMAP). The reaction achieved high selectivity for oxazolidinones, with minimal cyclic carbonate formation. Seven ion pair catalysts were evaluated for catalyzing the aza-Payne-type rearrangement reaction of epoxy amine 1a and carbon dioxide at 80 °C, using a 5 mol% catalyst loading and a carbon dioxide pressure of 0.1 MPa. Among them, the TBDH+/4-OP ion pair catalyst exhibited the best performance, achieving a high yield of oxazolidinones (84%) in 1 hour. A total of 14 oxazolidinones were synthesized with yields ranging from 72% to 97% under mild conditions (0.1 MPa CO2, 60–80 °C). The dual activation mechanism of the catalyst was confirmed through NMR titration and control experiments. As a bifunctional catalyst, the ion pair polarized the oxygen atom of epoxy amines via H-bonding with N+–H, while the phenolate anion activated the N–H bonding of epoxy amines simultaneously, facilitating the subsequent insertion of carbon dioxide. This approach offers a new method for synthesizing oxazolidinones using organic ion pair catalysts, with promising potential for broader applications.

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