肺表面活性物质
流变学
化学工程
动态光散射
悬挂(拓扑)
临界胶束浓度
纤维素
阳离子聚合
化学
弹性模量
材料科学
动态力学分析
剪切减薄
胶束
高分子化学
有机化学
复合材料
聚合物
纳米颗粒
水溶液
数学
同伦
纯数学
工程类
作者
Nawal Quennouz,Sara M. Hashmi,Hong Sung Choi,Jin Woong Kim,Chinedum O. Osuji
出处
期刊:Soft Matter
[Royal Society of Chemistry]
日期:2015-10-09
卷期号:12 (1): 157-164
被引量:112
摘要
Cellulose nanofibrils (CNFs) present unique opportunities for rheology modification in complex fluids. Here we systematically consider the effect of ionic and non-ionic surfactants on the rheology of dilute CNF suspensions. Neat suspensions are transparent yield-stress fluids which display strong shear thinning and power-law dependence of modulus on concentration, G' ∼ c(2.1). Surfactant addition below a critical mass concentration cc produces an increase in the gel modulus with retention of optical clarity. Larger than critical concentrations induce significant fibril aggregation leading to the loss of suspension stability and optical clarity, and to aggregate sedimentation. The critical concentration was the lowest for a cationic surfactant (DTAB), cc ≈ 0.08%, while suspension stability was retained for non-ionic surfactants (Pluronic F68, TX100) at concentrations up to 8%. The anionic surfactant SDS led to a loss of stability at cc ≈ 1.6% whereas suspension stability was not compromised by anionic SLES up to 8%. Dynamic light scattering data are consistent with a scenario in which gel formation is driven by micelle-nanofibril bridging mediated by associative interactions of ethoxylated surfactant headgroups with the cellulose fibrils. This may explain the strong difference between the properties of SDS and SLES-modified suspensions. These results have implications for the use of CNFs as a rheology modifier in surfactant-containing systems.
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