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Polymer dynamics in responsive microgels: influence of cononsolvency and microgel architecture

机译:反应性微凝胶中的聚合物动力学:共溶性和微凝胶结构的影响

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The dynamics of polymers on the nm and ns scales inside responsive microgels was probed by means of Neutron Spin Echo (NSE) experiments. Four different microgels were studied: poly(N-isopropylacrylamide) (PNIPAM) and poly(N,N-diethylacrylamide) (PDEAAM) microgels, a P(NIPAM-co-DEAAM) copolymer microgel and a core-shell microgel with a PDEAAM core and a PNIPAM shell. These four different microgel systems were investigated in a D2O/CD3OD solvent mixture with a molar CD3OD fraction of x_(MeOD) = 0.2 at 10 °C. The PNIPAM and the P(NIPAM-co-DEAAM) microgels are in the collapsed state under these conditions. They behave as solid diffusing objects with only very small additional contributions from internal motions. The PDEAAM particle is swollen under these conditions and mainly Zimm segmental dynamics can be detected in the intermediate scattering function at high momentum transfer. A cross-over to a collective diffusive motion is found for smaller q-values. The shell of the PDEAAM-core-PNIPAM-shell particle is collapsed, which leads to a static contribution to S(q,t); the core, however, is swollen and Zimm segmental dynamics are observed. However, the contributions of the Zimm segmental dynamics to the scattering function are smaller as compared to the pure PDEAAM particle. Interestingly the values of the apparent solvent viscosities inside the microgels as obtained from the NSE experiments are higher than for the bulk solvent. In addition different values were obtained for the PDEAAM microgel, and the PDEAAM-core of the PDEAAM-core-PNIPAM-shell particle, respectively. We attribute the strongly increased viscosity in the PDEAAM particle to enhanced inhomogeneities, which are induced by the swelling of the particle. The different viscosity inside the PDEAAM-core of the PDEAAM-core-PNIPAM-shell microgel could be due to a confinement effect: the collapsed PNIPAM-shell restricts the swelling of the PDEAAM-core and may modify the hydrodynamic interactions in this restricted environment inside the microgel.
机译:通过中子自旋回波(NSE)实验探查了反应性微凝胶中聚合物在nm和ns尺度上的动力学。研究了四种不同的微凝胶:聚(N-异丙基丙烯酰胺)(PNIPAM)和聚(N,N-二乙基丙烯酰胺)(PDEAAM)微凝胶,P(NIPAM-co-DEAAM)共聚物微凝胶和带有PDEAAM核的核壳微凝胶和PNIPAM外壳。在D2O / CD3OD溶剂混合物中,在10°C下,CD3OD摩尔分数x_(MeOD)= 0.2时研究了这四种不同的微凝胶系统。在这些条件下,PNIPAM和P(NIPAM-co-DEAAM)微凝胶处于折叠状态。它们表现为固体扩散对象,内部运动的贡献很小。在这些条件下,PDEAAM粒子膨胀,并且在高动量传递的中间散射函数中主要可以检测到Zimm分段动力学。对于较小的q值,发现与集体扩散运动的交叉。 PDEAAM-核-PNIPAM-壳粒子的壳塌陷,这导致对S(q,t)的静态贡献;然而,核心是肿胀的,并且观察到了Zimm节段动力学。但是,与纯PDEAAM颗粒相比,Zimm分段动力学对散射函数的贡献较小。有趣的是,从NSE实验获得的微凝胶内部的表观溶剂粘度值高于本体溶剂。另外,分别获得了PDEAAM微凝胶和PDEAAM核心-PNIPAM-壳颗粒的PDEAAM核心的不同值。我们将PDEAAM颗粒中粘度的大幅提高归因于颗粒膨胀引起的不均匀性增强。 PDEAAM-核-PNIPAM-壳微凝胶的PDEAAM核内部的不同粘度可能是由于限制作用:塌陷的PNIPAM-壳限制了PDEAAM-核的溶胀,并可能改变了内部受限环境中的水动力相互作用微凝胶。

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