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Monolithic, 'Molded', Porous Materials with High Flow Characteristics for Separations, Catalysis, or Solid-Phase Chemistry: Control of Porous Properties during Polymerization

机译:具有高流动特性的整体式,“模制”多孔材料,可用于分离,催化或固相化学:聚合过程中多孔性的控制

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The porosity and flow characteristics of macroporous polymer monoliths that may be used to prepare separation media, flow-through reactors, catalysts, or supports for solid-phase chemistry can be controlled easily during their preparation. Key variables such as temperature, composition of the pore-forming solvent mixture, and content of cross-linking divinyl monomer allow the tuning of average pore size within a broad range spanning 2 orders of magnitude. The polymerization temperature, through its effects on the kinetics of polymerization, is a particularly effective means of control, allowing the preparation of macroporous polymers with different pore size distributions from a single composition of the polymerization mixture. The choice of pore-forming solvent is also important, larger pores being obtained in a poor solvent due to an earlier onset of phase separation. Increasing the proportion of the cross-linking agent present in the monomer mixture not only affects the composition of the final monoliths but also decreases their average pore size as a result of early formation of highly cross-linked globules with a reduced tendency to coalesce. The synergy of different effects has also been observed under specific polymerization conditions using two monomer pairs, styrene-divinylbenzene and glycidyl methacrylate-ethylene dimethacrylate polymerized in close molds. Mercury intrusion porosimetry measurements, inverse size exclusion chromatography, and back pressure measured at different flow rates with the macroporous monoliths were used for the characterization of the porous properties. A good correlation between pore size and flow resistance that follows the Hagen-Poiseuille equation used previously to describe flow through a straight tube has been found.
机译:可用于制备分离介质,流通式反应器,催化剂或固相化学载体的大孔聚合物整料的孔隙率和流动特性可在制备过程中轻松控制。诸如温度,成孔溶剂混合物的组成和交联二乙烯基单体含量等关键变量可在2个数量级的宽范围内调节平均孔径。通过其对聚合动力学的影响,聚合温度是特别有效的控制手段,允许从聚合混合物的单一组成制备具有不同孔径分布的大孔聚合物。成孔溶剂的选择也很重要,由于相分离的开始较早,因此在不良溶剂中可获得较大的孔。由于早期形成高度交联的球粒并降低聚结的趋势,增加单体混合物中存在的交联剂的比例不仅会影响最终整料的组成,而且会降低其平均孔径。在特定的聚合条件下,使用在封闭模具中聚合的两个单体对,苯乙烯-二乙烯基苯和甲基丙烯酸缩水甘油酯-二甲基丙烯酸乙烯酯,还观察到了不同效果的协同作用。使用汞侵入孔隙率法测量,逆尺寸排阻色谱法以及使用大孔整料在不同流速下测量的背压来表征多孔性能。已经发现孔径和流动阻力之间具有良好的相关性,遵循了以前用来描述通过直管的流动的Hagen-Poiseuille方程。

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