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反相微乳液实现了可控超高分子量聚合物的连续流合成。

Inverse Miniemulsion Enables the Continuous-Flow Synthesis of Controlled Ultra-High Molecular Weight Polymers.

作者信息

Davidson Cullen L G, Lott Megan E, Trachsel Lucca, Wong Alexander J, Olson Rebecca A, Pedro Diego I, Sawyer W Gregory, Sumerlin Brent S

机构信息

George and Josephine Butler Polymer Research Laboratory, Center for Macromolecular Science and Engineering, Department of Chemistry, University of Florida, P.O. Box 117200, Gainesville, Florida 32611-7200, United States.

Department of Mechanical and Aerospace Engineering, University of Florida, Gainesville, Florida 32611, United States.

出版信息

ACS Macro Lett. 2023 Sep 19;12(9):1224-1230. doi: 10.1021/acsmacrolett.3c00431. Epub 2023 Aug 25.

Abstract

We report the controlled synthesis of ultra-high molecular weight (UHMW) polymers ( ≥ 10 g/mol) via continuous flow in a tubular reactor. At high monomer conversion, UHMW polymers in homogeneous batch polymerization exhibit high viscosities that pose challenges for employing continuous flow reactors. However, under heterogeneous inverse miniemulsion (IME) conditions, UHMW polymers can be produced within the dispersed phase, while the viscosity of the heterogeneous mixture remains approximately the same as the viscosity of the continuous phase. Conducting such IME polymerizations in flow results in a faster rate of polymerization compared to batch IME polymerizations while still providing excellent control over molecular weight up to 10 g/mol. Crucial emulsion parameters, such as particle size and stability under continuous flow conditions, were examined using dynamic light scattering. A range of poly(,-dimethylacrylamide) and poly(4-acryloylmorpholine) polymers with molecular weights of 10-10 g/mol ( ≤ 1.31) were produced by this method using water-soluble trithiocarbonates as photoiniferters.

摘要

我们报道了通过在管式反应器中连续流动来控制合成超高分子量(UHMW)聚合物(≥10 g/mol)。在高单体转化率下,均相间歇聚合中的超高分子量聚合物表现出高粘度,这给采用连续流动反应器带来了挑战。然而,在非均相反相微乳液(IME)条件下,超高分子量聚合物可以在分散相中生成,而异质混合物的粘度与连续相的粘度大致相同。与间歇IME聚合相比,在流动中进行此类IME聚合可实现更快的聚合速率,同时仍能对高达10 g/mol的分子量提供出色的控制。使用动态光散射研究了关键的乳液参数,如连续流动条件下的粒径和稳定性。通过该方法,使用水溶性三硫代碳酸盐作为光引发转移终止剂,制备了一系列分子量为10 - 10 g/mol(≤1.31)的聚(N,N - 二甲基丙烯酰胺)和聚(4 - 丙烯酰基吗啉)聚合物。

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