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An Amphiphilic Mesoporous Polymer Comprising a”built-in”Imidazolium Ionic Liquid via Nanocasting Method as a Novel Catalyst Support with Combined Prospects

机译:通过纳米铸造方法作为“内置”咪唑离子液体的两亲性介孔聚合物,作为一种新型的催化剂支持,并具有联合前景

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摘要

An imidazolium based ionic liquid bearing triethylene glycol(TEG)tag was employed as a functional monomer together with divinylbenzene to prepare a novel hydrophilic mesoporous polymer containing ionic liquid functionalities via nanocasting method using SBA-15 as a hard template.The material was characterized using transmission electron microscopy(TEM),N2 sorption analysis,thermo-gravimetric analysis(TGA),Fourier-transform infrared spectroscopy(FT-IR),elemental analysis(CHN),solid-state NMR spectroscopy and contact angle measurement.It was found that the hydrophobic/hydrophilic properties of initial template,stepwise addition of monomers and initiator as well as amount of carrier solvent are of the important parameters in preparation of the polymer with uniform pore structure.Benefited from the combined properties such as incorporation of ionic liquid within the pore system of a flexible organic matrix together with its hydrophilic character,the material was found as an appropriate support to generate highly dispersed and very small size of Pd nanoparticles inside the pores.The prepared catalyst in this way,demonstrated outstanding activity,recyclability and high durability in the Suzuki cross-coupling reaction of varied aryl halides with boronic acids in water as a green reaction medium.The beneficial role of imidazolium ionic liquid in the formation of small and highly active Pd nanoparticles was confirmed with comparative experiments.
机译:基于咪唑的离子液体轴承三乙二醇(TEG)标签被用作功能性单体和dipinylybenenzene,以使用SBA-15的材料为特征的传输来制备含有离子液体功能的新型亲水性中孔聚合物。电子显微镜(TEM),N2吸附分析,热力学分析(TGA),傅立叶转换红外光谱(FT-IR),元素分析(CHN),固态NMR光谱和接触角度测量。初始模板的疏水/亲水性能,单体和引发剂的逐步添加以及载体量的量是准备孔结构均匀的聚合物的重要参数。从合并的特性(例如孔内掺入孔内)的聚合物。柔性有机基质的系统及其亲水性,该材料被发现为适当的SUP端口以产生高度分散的孔内PD纳米颗粒。以这种方式,制备的催化剂表现出了出色的活性,可回收性和高耐用性,在铃木的交叉偶联反应中,各种芳基卤化物与硼酸在水中的芳基卤化物作为绿色,反应培养基。通过比较实验证实了咪唑离子液体在形成小且高度活跃的PD纳米颗粒中的有益作用。

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