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首页> 外文期刊>RSC Advances >On the stability and chemorheology of a urea choline chloride deep-eutectic solvent as an internal phase in acrylic high internal phase emulsions
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On the stability and chemorheology of a urea choline chloride deep-eutectic solvent as an internal phase in acrylic high internal phase emulsions

机译:丙烯酸高内相乳液中尿素氯化氯化胆碱深 - 共晶溶剂作为内相的稳定性和化学性

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摘要

High internal phase emulsions are an interesting emulsion subset attainable by surpassing the critical volume of uniform spherical arrangement resulting in a new metastable polyhedral motif. By profiting from their stability time frame and through the introduction of a polymerizable phase, these unique structures can be "locked" in place, affording interconnected hierarchically porous polymers. Rheological exploration has establishing several emulsion stability key parameters including surfactant concentration, internal phase volume fraction (phi), interfacial tension (sigma), phase polarity, and temperature. Because the majority of HIPEs studied are aqueous, additional parameters such as internal phase viscosity have not been studied in detail. Deep-eutectic solvents (DES) are a new generation of green solvents sharing several ionic liquid properties. DES provide an ideal opportunity to study nonaqueous polar internal phases of increased viscosity while expanding on the conditions for polymerization to potential scale up applications. This study presents the first detailed investigation on the DES-non ionic surfactant HIPE systems. Shear stability of non-aqueous HIPEs was evaluated taking into account continuous phase viscosity as well as monomer and surfactant molecular nature (i.e. chain length and functionality). HIPE polymerization was evaluated through isothermal oscillatory time-sweep experiments. Longer tail methacrylic monomers presented preferential stability over acrylic or short tail monomers. Furthermore, emulsions showed improved stability and elasticity compared to aqueous HIPEs due to their high internal phase viscosity. Internal phase viscosity mediated by hydrogen bonding increased activation energy as estimated by complex viscosity plots.
机译:高内相乳液是一种有趣的乳液子集,通过超越均匀球面布置的临界体积可获得,得到新的亚稳态多面体图案。通过从其稳定时间框架和引入可聚合阶段的引入,这些独特的结构可以“锁定”到位,得到相互连接的分层多孔聚合物。流变勘探已经建立了几种乳液稳定性关键参数,包括表面活性剂浓度,内部体积分数(PHI),界面张力(Sigma),相位极性和温度。由于研究的大多数臀部是水性的,因此尚未详细研究诸如内相粘度的附加参数。深度共晶溶剂(DES)是一种新一代绿色溶剂,共用几种离子液体性能。 DES提供了一种理想的机会,可以在扩展到潜在规模的应用的条件下,提供增加的粘度的非水内部相的机会。该研究介绍了对DES-NOO离子表面活性剂HIPE系统的第一次详细研究。考虑连续相粘度以及单体和表面活性剂分子性(即链长和功能)评估非水髋关节的剪切稳定性。通过等温振荡时间扫描实验评估HIPE聚合。更长的甲基丙烯酸单体在丙烯酸或短尾单体上呈现优先稳定性。此外,与其高内相粘度相比,与水性臀部相比,乳液显示出改善的稳定性和弹性。通过复合粘度图估计,通过氢键介导的内相粘度增加了活化能量。

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  • 来源
    《RSC Advances》 |2016年第85期|共9页
  • 作者单位

    Louisiana State Univ Dept Chem Baton Rouge LA 70820 USA;

    Louisiana State Univ Agr Ctr Sch Renewable Nat Resources Baton Rouge LA 70803 USA;

    Univ Guadalajara Dept Ingn Quim Guadalajara 44430 Jal Mexico;

    Louisiana State Univ Agr Ctr Sch Renewable Nat Resources Baton Rouge LA 70803 USA;

    Louisiana State Univ Dept Chem Baton Rouge LA 70820 USA;

    Univ Nacl Autonoma Mexico CONACYT Ctr Nanociencias &

    Nanotecnol CNyN Ensenada 22860 BC Mexico;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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