<p>Chemical fixation of CO<sub>2</sub> into 2-oxazolidinones is of significance because of the important application in the chemical synthesis. In this study, a series of ionic liquid functionalized SiO<sub>2</sub> nanocomposites were synthesized and developed as heterogeneous catalysts for the CO<sub>2</sub> cyclization reaction. The resulting SiO<sub>2</sub>-MILZrCl<sub>5</sub> behaved as high-efficiency heterogeneous catalyst for solvent-additive-free CO<sub>2</sub> cyclization at 70&#xa0;°C and 0.1&#xa0;MPa CO<sub>2</sub>. A high yield of 93% with selectivity of 99.4% over 5-methyl-3-phenyloxazolidin-2-one was attained. Furthermore, a wide range of epoxides were transformed with high yields and excellent selectivities under atmospheric pressure. Additionally, SiO<sub>2</sub>-MILZrCl<sub>5</sub> could serve as a durable and recoverable heterogeneous catalyst for the reaction, which could be used for five cycles without significant loss of catalytic activity. This study offers novel insights for the development of green catalysts for the efficient CO<sub>2</sub> fixation.</p> Graphical Abstract <p></p>

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Efficient and sustainable fixation of CO2 into 2-oxazolidinones utilizing ionic liquid functionalized SiO2 nanocomposites

  • Yulin Hu,
  • Shiyao Lin,
  • Xiaobing Liu

摘要

Chemical fixation of CO2 into 2-oxazolidinones is of significance because of the important application in the chemical synthesis. In this study, a series of ionic liquid functionalized SiO2 nanocomposites were synthesized and developed as heterogeneous catalysts for the CO2 cyclization reaction. The resulting SiO2-MILZrCl5 behaved as high-efficiency heterogeneous catalyst for solvent-additive-free CO2 cyclization at 70 °C and 0.1 MPa CO2. A high yield of 93% with selectivity of 99.4% over 5-methyl-3-phenyloxazolidin-2-one was attained. Furthermore, a wide range of epoxides were transformed with high yields and excellent selectivities under atmospheric pressure. Additionally, SiO2-MILZrCl5 could serve as a durable and recoverable heterogeneous catalyst for the reaction, which could be used for five cycles without significant loss of catalytic activity. This study offers novel insights for the development of green catalysts for the efficient CO2 fixation.

Graphical Abstract