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Copper (0) Mediated Single Electron Transfer-Living Radical Polymerization of Methyl Methacrylate: Functionalized Graphene as a Convenient Tool for Radical Initiator

机译:铜(0)介导的甲基丙烯酸甲酯的单电子转移活性自由基聚合:官能化石墨烯作为自由基引发剂的便捷工具

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摘要

Polymer nanocomposites have been synthesized by the covalent addition of bromide-functionalized graphene (Graphene-Br) through the single electron transfer-living radical polymerization technique (SET-LRP). Graphite functionalized with bromide for the first time via an efficient route using mild reagents has been designed to develop a graphene based radical initiator. The efficiency of sacrificial initiator (ethyl α-bromoisobutyrate) has also been compared with a graphene based initiator towards monitoring their Cu(0) mediated controlled molecular weight and morphological structures through mass spectroscopy (MOLDI-TOF) and field emission scanning electron microscopy (FE-SEM) analysis, respectively. The enhancement in thermal stability is observed for graphene-grafted-poly(methyl methacrylate) (G- -PMMA) at 392 °C, which may be due to the influence ofthe covalent addition of graphene, whereas the sacrificial initiator used to synthesize G- -PMMA (S) has low thermal stability as analyzed by TGA. A significant difference is noticed on their glass transition and melting temperatures by DSC. The controlled formation and structural features of the polymer-functionalized-graphene is characterized by Raman, FT-IR, UV-Vis spectroscopy, NMR, and zeta potential measurements. The wettability measurements of the novel G- -PMMA on leather surface were found to be better in hydrophobic nature with a water contact angle of 109 ± 1°.
机译:通过单活电子自由基聚合技术(SET-LRP)通过共价添加溴化物官能化的石墨烯(Graphene-Br)合成了聚合物纳米复合材料。已设计出使用温和的试剂通过有效途径首次将溴化物官能化的石墨,以开发出基于石墨烯的自由基引发剂。牺牲引发剂(α-溴异丁酸乙酯)的效率也已与基于石墨烯的引发剂进行了比较,以通过质谱(MOLDI-TOF)和场发射扫描电子显微镜(FE)监测其Cu(0)介导的受控分子量和形态结构-SEM)分析。在392°C下观察到石墨烯接枝的聚甲基丙烯酸甲酯(G--PMMA)的热稳定性增强,这可能是由于石墨烯共价添加的影响,而牺牲引发剂用于合成G-如通过TGA分析,-PMMA(S)具有低的热稳定性。通过DSC观察到它们的玻璃化转变和熔融温度存在显着差异。聚合物官能化石墨烯的受控形成和结构特征通过拉曼,FT-IR,UV-Vis光谱,NMR和ζ电位测量进行表征。发现新型G--PMMA在皮革表面的润湿性测量具有更好的疏水性,水接触角为109±1°。

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