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Janus 纳米粒子在纳米管流中的自组装和黏度行为。

Self-Assembly and Viscosity Behavior of Janus Nanoparticles in Nanotube Flow.

机构信息

Department of Mechanical Engineering, Kindai University , Osaka, Japan.

出版信息

Langmuir. 2017 Jan 24;33(3):736-743. doi: 10.1021/acs.langmuir.6b02694. Epub 2017 Jan 12.

Abstract

Janus nanoparticles (JNPs) have received considerable attention because of their characteristic physical properties that are due to more than two distinct chemical or physical surfaces. We investigated the rheological properties of a JNP solution in the nanotubes using a computer simulation. Prediction and control of the self-assembly of colloidal nanoparticles is of critical importance in materials chemistry and engineering. Herein, we show computer simulation evidence of a new type of velocity profile and a hallmark shear-thinning behavior by confining a JNP solution to a nanotube with hydrophobic and hydrophilic wall surfaces. We derived curves of the shear rate versus the viscosity for two quasi-one-dimensional nanotube systems including diluted and concentrated volume fractions of JNP solutions. For the diluted system, under relatively low shear rates, shear-thinning behavior with a moderate slope or behavior similar to a Newtonian fluid is observed because of the clustering of JNPs. Under relatively high shear rates, the slope of shear thinning changes markedly because the self-assembled structures are rearranged. Moreover, for concentrated systems, when the nanotube wall is hydrophobic, new characteristic velocity profiles that have not been reported before are observed. Our simulation offers a guide to control the rheological properties of JNP solutions by the chemical patterns on the surfaces of nanochannels, the effect of confinement, and the self-assembled structure.

摘要

Janus 纳米粒子 (JNPs) 因其具有超过两个不同化学或物理表面的特征物理性质而受到广泛关注。我们使用计算机模拟研究了 JNP 溶液在纳米管中的流变性质。胶体纳米粒子的自组装的预测和控制在材料化学和工程中至关重要。在此,我们通过将 JNP 溶液限制在具有疏水和亲水壁表面的纳米管中,展示了一种新型速度分布和剪切稀化行为的计算机模拟证据。我们为包括 JNP 溶液稀释和浓缩体积分数的两个准一维纳米管系统导出了剪切速率与粘度的曲线。对于稀释系统,在相对较低的剪切速率下,由于 JNPs 的团聚,观察到具有中等斜率或类似于牛顿流体的剪切稀化行为。在相对较高的剪切速率下,剪切稀化的斜率会发生明显变化,因为自组装结构会重新排列。此外,对于浓缩系统,当纳米管壁为疏水性时,会观察到以前没有报道过的新特征速度分布。我们的模拟为通过纳米通道表面的化学图案、限制效应和自组装结构来控制 JNP 溶液的流变性质提供了指导。

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