Kyrey Tetyana, Witte Judith, Feoktystov Artem, Pipich Vitaliy, Wu Baohu, Pasini Stefano, Radulescu Aurel, Witt Marcus U, Kruteva Margarita, von Klitzing Regine, Wellert Stefan, Holderer Olaf
Institute of Chemistry, TU Berlin, Strasse des 17. Juni 124, 10623 Berlin, Germany.
Jülich Centre for Neutron Science JCNS, Forschungszentrum Jülich GmbH at Heinz Maier-Leibnitz Zentzum (MLZ), Lichtenbergstrasse 1, 85747 Garching, Germany.
Soft Matter. 2019 Aug 28;15(32):6536-6546. doi: 10.1039/c9sm01161g. Epub 2019 Jul 29.
The preparation of poly(N-isopropylacrylamide) microgels via classical precipitation polymerization (batch method) and a continuous monomer feeding approach (feeding method) leads to different internal crosslinker distributions, i.e., from core-shell-like to a more homogeneous one. The internal structure and dynamics of these microgels with low and medium crosslinker concentrations are studied with dynamic light scattering and small-angle neutron scattering in a wide q-range below and above the volume phase transition temperature. The influence of the preparation method, and crosslinker and initiator concentration on the internal structure of the microgels is investigated. In contrast to the classical conception where polymer microgels possess a core-shell structure with the averaged internal polymer density distribution within the core part, a detailed view of the internal inhomogeneities of the PNIPAM microgels and the presence of internal domains even above the volume phase transition temperature, when polymer microgels are in the deswollen state, are presented. The correlation between initiator concentration and the size of internal domains that appear inside the microgel with temperature increase is demonstrated. Moreover, the influence of internal inhomogeneities on the dynamics of the batch- and feeding-microgels studied with neutron spin-echo spectroscopy is reported.
通过经典沉淀聚合(间歇法)和连续单体进料法(进料法)制备聚(N-异丙基丙烯酰胺)微凝胶会导致不同的内部交联剂分布,即从核壳状到更均匀的分布。在低于和高于体积相变温度的较宽q范围内,利用动态光散射和小角中子散射研究了这些低交联剂浓度和中等交联剂浓度微凝胶的内部结构和动力学。研究了制备方法、交联剂和引发剂浓度对微凝胶内部结构的影响。与聚合物微凝胶具有核壳结构且核部分内聚合物密度平均分布的经典概念相反,本文展示了聚N-异丙基丙烯酰胺微凝胶内部不均匀性的详细情况,以及即使在体积相变温度以上,当聚合物微凝胶处于溶胀状态时内部区域的存在情况。证明了引发剂浓度与微凝胶内部随着温度升高而出现的区域尺寸之间的相关性。此外,还报道了用中子自旋回波光谱研究内部不均匀性对间歇式和进料式微凝胶动力学的影响。