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首页> 外文期刊>Journal of Molecular Liquids >Effect of supramolecular polymeric aggregation in room temperature ionic liquids (RTILs) on catalytic activity in the synthesis of 4H-chromene derivatives and Knoevenagel condensation
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Effect of supramolecular polymeric aggregation in room temperature ionic liquids (RTILs) on catalytic activity in the synthesis of 4H-chromene derivatives and Knoevenagel condensation

机译:室温离子液体(RTILS)在4H-铬衍生物合成中催化活性对室温离子液体(RTILS)的影响

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摘要

RTILs exhibit supramolecular self-assembled polymeric aggregation due to noncovalent interactions. The influence of the aggregation behaviour of RTILs on catalytic activity is evident but still poorly understood. The present work focuses on establishing a relationship between the role of supramolecular self-assembly of RTILs on catalysis in organic reactions. Herein, we report four unreported, air and water stable, halide free, C-2-symmetrical, third generation, hydrophobic imidazolium-based room temperature ionic liquids (RTILs 1-4), their synthesis and function as catalysts for the synthesis of 4H-chromene derivatives (terahydrobenzo[b]pyran) and Knoevenagel condensation. The RTILs showed unprecedented solubility/miscibility behaviour. The RilLs showed that 1,3-dihexyhmidazolium 2-aminobenzoate [hhim] [OAB] (RTIL-3) performed better in terms of yield and reaction time. Supramolecular polymeric aggregation was explored by employing ESIMS, while the critical aggregation concentration (CAC) was calculated via recording electrical conductivity of RTILs in absolute ethanol. We have also used rheometry experiments to explore forces governing the occurrence of aggregates in the liquid phase of RTILs. (C) 2020 Elsevier B.V. All rights reserved.
机译:由于非共价相互作用,RTIL表现出超分子自组装聚合物聚集。RTIL的聚集行为对催化活性的影响是明显的,但仍不清楚。目前的工作重点是建立RTIL的超分子自组装在有机反应催化中的作用之间的关系。在此,我们报告了四种未报告的、空气和水稳定、无卤化物、C-2对称、第三代、疏水性咪唑基室温离子液体(RTILs 1-4),它们的合成及其作为4H-铬烯衍生物(四氢苯并[b]吡喃)和Knoevenagel缩合的催化剂的功能。RTIL表现出前所未有的溶解/混溶行为。RILL结果表明,1,3-二己基咪唑-2-氨基苯甲酸盐[hhim][OAB](RTIL-3)在产率和反应时间方面表现更好。通过ESIMS探索超分子聚合物聚集,通过记录RTIL在无水乙醇中的电导率计算临界聚集浓度(CAC)。我们还利用流变仪实验探索了控制RTIL液相中聚集体出现的力。(C) 2020爱思唯尔B.V.版权所有。

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