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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >A Polymer-Brush-Based Nanovalve Controlled by Nanoparticle Additives: Design Principles
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A Polymer-Brush-Based Nanovalve Controlled by Nanoparticle Additives: Design Principles

机译:纳米粒子添加剂控制的基于聚合物刷的纳米阀:设计原理

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摘要

Polymer-grafted surfaces and channels are increasingly used for the design of responsive materials and sensors due to robust performance and ease of use. Various strategies for the control of the nanoscale morphologies of such materials and devices are being tested. Entropic repulsion between the polymer chains in a grafted brush of sufficient density causes the chains to extend in the direction perpendicular to the grafting surface in comparison to the position of unattached polymers. When nanoparticles having attractive interactions with the polymers are introduced into the solvent, these nanoparticles tend to infiltrate into the brush and reduce its extension. Under certain conditions, a sharp reduction in brush height extension can occur over a narrow range of nanoparticle concentrations in solution. We describe a way of controlling transport through polymer-functionalized nanochannels with nanoparticle additives, relying on the physics of nanoparticles and polymer brushes under confinement, and we suggest a blueprint for the creation of a tunable nanovalve. The nanovalve is modeled as a cylinder with a polymer brush grafted on its inside surface. Brush properties such as the chain length and the grafting density are chosen so that the brush chains extend into the center of the cylinder in the absence of nanoparticles, occluding the flux of analyte molecules through the pore. When nanoparticles that are attracted to the polymers are introduced into solution, they infiltrate into the brush and partially collapse it against the cylindrical grafting surface, opening space in the center of the cylinder through which analyte molecules can flow. The operation of such a nanovalve is analyzed via self-consistent field theory calculations in the strong-stretching approximation. Self-consistent field analysis is supported by Langevin dynamics simulations of the underlying coarse-grained model of the polymer nanoparticle system.
机译:由于坚固的性能和易用性,聚合物接枝的表面和通道越来越多地用于响应材料和传感器的设计。正在测试用于控制这种材料和装置的纳米级形态的各种策略。与未连接的聚合物位置相比,接枝刷中的聚合物链之间具有足够密度的熵排斥使链在垂直于接枝表面的方向上延伸。当与聚合物具有吸引力的相互作用的纳米颗粒被引入到溶剂中时,这些纳米颗粒倾向于渗透到刷子中并减少其延伸。在某些条件下,在溶液中的纳米粒子浓度范围狭窄时,刷头高度延伸会急剧减少。我们描述了一种在受限的情况下依赖于纳米粒子和聚合物刷的物理特性来控制通过具有纳米粒子添加剂的聚合物功能化纳米通道的传输方式的方法,并提出了创建可调谐纳米阀的蓝图。将纳米阀建模为圆柱体,在其内表面接有聚合物刷。选择刷子的性质,例如链长和接枝密度,以使刷子链在没有纳米粒子的情况下延伸到圆柱体的中心,从而阻塞了分析物分子通过孔的流量。当被聚合物吸引的纳米粒子被引入溶液中时,它们会渗透到刷子中并使其部分塌陷在圆柱状的接枝表面上,从而在圆柱体中央形成开口空间,分析物分子可以流过该开口空间。通过自洽场理论计算以强拉伸近似分析这种纳米阀的操作。 Langevin动力学模拟对聚合物纳米粒子系统的基础粗粒度模型提供了自洽场分析。

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