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Molecular thermodynamics of nanoscale colloid-polymer mixtures: Chemical potentials and interaction forces.

机译:纳米级胶体-聚合物混合物的分子热力学:化学势和相互作用力。

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Nanoscale colloidal particles display fascinating electronic, optical and reinforcement properties as a consequence of their dimensions. Stable dispersions of nanoscale colloids find applications in drug delivery, biodiagnostics, photonic and electronic devices, and polymer nanocomposites. Most nanoparticles are unstable in dispersions and polymeric surfactants are added generally to improve dispersability and control self-assembly. However, the effect of polymeric modifiers on nanocolloid properties is poorly understood and design of modifiers is guided usually by empirical approaches. Monte Carlo simulations are used to gain a fundamental molecular-level understanding of the effect of modifiers properties on the thermodynamics and interaction forces of nanoscale colloidal particles. A novel method based on the expanded ensemble Monte Carlo technique has been developed for calculation of the chemical potential of colloidal particles in colloid-polymer mixtures (CPM). Using this method, the effect of molecular parameters like colloid diameter, polymer chain length, colloid-polymer interaction strength, and colloid and polymer concentrations, on the colloid chemical potential is investigated for both hard-sphere and attractive Lennard-Jones CPM. The presence of short-chain polymeric modifiers reduces the colloid chemical potential in attractive as well as athermal systems. In attractive CPM, there is a strong correlation between polymer adsorption and colloid chemical potential, as both show a similar dependence on the polymer molecular weight. Based on the simulation results, simple scaling relationships are proposed that capture the functional dependence of the thermodynamic properties on the molecular parameters. The polymer-induced interaction forces between the nanoparticles have been calculated as a function of the above parameters for freely-adsorbing and end-grafted homopolymer modifiers. The polymer-induced force profiles are used to identify design criteria for effective modifiers. Adsorbing modifiers give rise to attractive interactions between the nanoparticles over the whole parameter range explored in this study. Grafted surface modifiers lead to attraction or repulsion based on the polymer chain length and grafting density. The polymer-induced attraction in both adsorbing and grafted modifiers is attributed primarily to polymer intersegmental interactions and bridging. The location of the thermodynamic minimum corresponding to the equilibrium particle spacing in nanoparticle-polymer mixtures can be controlled by tuning the modifier properties.
机译:纳米级胶体颗粒由于其尺寸而显示出令人着迷的电子,光学和增强性能。纳米胶体的稳定分散体可用于药物输送,生物诊断,光子和电子设备以及聚合物纳米复合材料。大多数纳米颗粒在分散液中不稳定,通常添加聚合物表面活性剂以改善分散性并控制自组装。然而,人们对聚合物改性剂对纳米胶体性能的影响了解甚少,并且改性剂的设计通常通过经验方法进行指导。蒙特卡洛模拟用于获得基本的分子水平的了解,了解改性剂性能对纳米级胶体颗粒的热力学和相互作用力的影响。已经开发了一种基于扩展集成蒙特卡洛技术的新方法,用于计算胶体-聚合物混合物(CPM)中胶体颗粒的化学势。使用这种方法,研究了硬球体和有吸引力的Lennard-Jones CPM的分子参数(如胶体直径,聚合物链长,胶体-聚合物相互作用强度以及胶体和聚合物浓度)对胶体化学势的影响。短链聚合物改性剂的存在降低了吸引系统和非热系统中的胶体化学势。在有吸引力的CPM中,聚合物吸附和胶体化学势之间存在很强的相关性,因为两者都显示出对聚合物分子量的相似依赖性。基于仿真结果,提出了简单的比例关系,以捕捉热力学性质对分子参数的功能依赖性。已经根据上述参数对自由吸附和端接均聚物改性剂进行了计算,计算出纳米颗粒之间聚合物诱导的相互作用力。聚合物引起的力曲线用于确定有效改性剂的设计标准。在本研究探讨的整个参数范围内,吸附改性剂引起纳米粒子之间的吸引作用。接枝的表面改性剂基于聚合物链长和接枝密度导致吸引或排斥。聚合物引起的吸附改性剂和接枝改性剂的吸引力主要归因于聚合物段间的相互作用和桥联。可以通过调节改性剂性能来控制对应于纳米颗粒-聚合物混合物中的平衡颗粒间距的热力学最小值的位置。

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