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支数对温敏性聚(N-异丙基丙烯酰胺)星型聚合物聚集行为的影响。

The Effect of Number of Arms on the Aggregation Behavior of Thermoresponsive Poly(N-isopropylacrylamide) Star Polymers.

机构信息

Faculty of Engineering, Østfold University College, P.O. Box 700, 1757, Halden, Norway.

Department of Material Engineering and Manufacturing, Technical University of Cartagena Cartagena, Murcia, 30202, Spain.

出版信息

Chemphyschem. 2020 Jun 16;21(12):1258-1271. doi: 10.1002/cphc.202000273. Epub 2020 Jun 2.

Abstract

The thermoresponsive nature of aqueous solutions of poly(N-isopropylacrylamide) (PNIPAAM) star polymers containing 2, 3, 4, and 6 arms has been investigated by turbidity, dynamic light scattering, rheology, and rheo-SALS. Simulations of the thermosensitive nature of the single star polymers have also been conducted. Some of the samples form aggregates even at temperatures significantly below the lower critical solution temperature (LCST) of PNIPAAM. Increasing concentration and number of arms promotes associations at low temperatures. When the temperature is raised, there is a competition between size increase due to enhanced aggregation and a size reduction caused by contraction. Monte Carlo simulations show that the single stars contract with increasing temperature, and that this contraction is more pronounced when the number of arms is increased. Some samples exhibit a minimum in the turbidity data after the initial increase at the cloud point. The combined rheology and rheo-SALS data suggest that this is due to a fragmentation of the aggregates followed by re-aggregation at even higher temperatures. Although the 6-arm star polymer aggregates more than the other stars at low temperatures, the more compact structure renders it less prone to aggregation at temperatures above the cloud point.

摘要

含有 2、3、4 和 6 条臂的聚(N-异丙基丙烯酰胺)(PNIPAAM)星形聚合物水溶液的温敏性质已通过浊度、动态光散射、流变学和流变学 SALS 进行了研究。还对单星聚合物的热敏性质进行了模拟。一些样品即使在远低于 PNIPAAM 的低临界溶液温度 (LCST) 的温度下也会形成聚集体。增加浓度和臂数会促进低温下的缔合。当温度升高时,由于增强的聚集导致的尺寸增加与收缩引起的尺寸减小之间存在竞争。蒙特卡罗模拟表明,随着温度的升高,单星会收缩,并且当臂数增加时,收缩更为明显。一些样品在浊度数据在云点初始增加后出现最小值。结合流变学和流变学 SALS 数据表明,这是由于在更高温度下聚集物的碎片化随后再聚集所致。尽管 6 臂星形聚合物在低温下比其他星形聚合物更容易聚集,但更紧凑的结构使其在高于云点的温度下不易聚集。

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