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Shear and elongational rheology of solutions of hydrophobically modified polymers with spherical and rodlike surfactant micelles.

机译:具有球形和棒状表面活性剂胶束的疏水改性聚合物溶液的剪切和伸长流变学。

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Aqueous solutions of hydrophobically modified polymers (hm-polymers) and surfactants were investigated by rheological and rheo-optical experiments. The objectives were to understand the interactions between hm-polymers and surfactants and to control their rheology by changing the surfactant morphology from spherical to rodlike micelles. Randomly grafted hm-hydroxyethylcellulose (hmHEC) with C{dollar}sb{lcub}12{rcub}{dollar} and C{dollar}sb{lcub}16{rcub}{dollar} hydrophobes and hm-polyacrylamide (hmPAM) with sulfonated C{dollar}sb{lcub}12{rcub}{dollar} hydrophobes were studied. The surfactants used were sodium dodecylsulfate (SDS), cetyltrimethylammonium bromide (CTAB), and cetyldimethylamine oxide, along with sodium salicylate (NaSal) and hexanol cosurfactants and KBr salt.; Interactions between hm-polymers and spherical micelles were investigated by shear rheology. With increasing surfactant concentration, the viscosity of semidilute hm-polymer solution first increases and then decreases due to micellar aggregation around hydrophobe clusters and masking of hydrophobes by excess micelles, respectively. For hmHEC and CTAB systems, steady-state fluorescence quenching experiments showed that the number of hydrophobes per mixed micelle decreases from over two with no surfactant to around two at the viscosity maximum and to one when hydrophobes are masked. The strength of interactions increases with hydrophobe length and content and surfactant tail length. Hydrophobic interactions also depend on inherent electrostatic interactions. In shear and elongational flows, hmHEC solutions were shear- and elongational-thinning due to the breakup of hydrophobe associations. Elongational thickening was also observed and attributed to flow-enhanced associations. Interactions of hmHEC with spherical SDS and CTAB micelles merely affect the viscosity values and do not alter their inherent flow profiles, which can be collapsed and fitted with a rheological model for telechelic hm-polymers.; Interactions between hm-polymers and rodlike micelles were also studied by shear rheology. The viscosity of semidilute hm-polymer solution increases dramatically with surfactant concentration due to extensive bridging interactions between hm-polymers and micellar rods. For various polymer/surfactant systems, the viscosity at high surfactant concentrations can be tuned by controlling the extent of rod formation. Bridging of semidilute micellar rods with hm-polymers resulted in a similar viscosity enhancement. Small-angle neutron scattering (SANS) and flow birefringence experiments showed that flow-induced growth and structural changes of rodlike CTAB/NaSal micelles in shear (and elongational) flow were suppressed due to interactions with hmHEC, which hinder micellar alignment.
机译:通过流变和流变光学实验研究了疏水改性聚合物(hm-polymers)和表面活性剂的水溶液。目的是了解hm-聚合物和表面活性剂之间的相互作用,并通过将表面活性剂的形态从球形改变为棒状来控制其流变性。用C {dollar} sb {lcub} 12 {rcub} {dollar}和C {dollar} sb {lcub} 16 {rcub} {dollar}疏水物和hm-聚丙烯酰胺(hmPAM)随机接枝hm-羟乙基纤维素(hmHEC)研究了C {dollar} sb {lcub} 12 {rcub} {dollar}疏水物。使用的表面活性剂是十二烷基硫酸钠(SDS),十六烷基三甲基溴化铵(CTAB)和十六烷基二甲基氧化胺,以及水杨酸钠(NaSal)和己醇助表面活性剂以及KBr盐。通过剪切流变学研究了hm-聚合物和球形胶束之间的相互作用。随着表面活性剂浓度的增加,半稀释的hm-聚合物溶液的粘度首先增加,然后下降,这分别是由于疏水团簇周围的胶束聚集和过量胶团对疏水团的掩盖所致。对于hmHEC和CTAB系统,稳态荧光猝灭实验表明,每个混合胶束的疏水物数量从无表面活性剂的两种以上减少到最大粘度时的两种左右,而当疏水物被掩盖时减少到一种。相互作用的强度随着疏水物长度和含量以及表面活性剂尾部长度的增加而增加。疏水相互作用还取决于固有的静电相互作用。在剪切和伸长流动中,由于疏水团的破坏,hmHEC溶液被剪切和伸长稀化。还观察到伸长增厚,并归因于流动增强的关联。 hmHEC与球形SDS和CTAB胶束的相互作用仅影响粘度值,而不会改变其固有的流动曲线,该曲线可以折叠并与远螯hm聚合物的流变模型拟合。还通过剪切流变学研究了hm-聚合物和棒状胶束之间的相互作用。半稀释的hm-聚合物溶液的粘度随着表面活性剂的浓度而急剧增加,这是由于hm-聚合物与胶束棒之间的广泛桥连作用所致。对于各种聚合物/表面活性剂体系,可以通过控制棒形成的程度来调节高表面活性剂浓度下的粘度。半稀释胶束杆与hm聚合物的桥接导致相似的粘度增加。小角度中子散射(SANS)和流动双折射实验表明,由于与hmHEC的相互作用而抑制了剪切流(和伸长流)中棒状CTAB / NaSal胶束的流致生长和结构变化,这阻碍了胶束排列。

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