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Thiolated gold nanoparticle solvation in near-critical fluids: The role of density, temperature, and topology

机译:近临界流体中的硫醇化金纳米粒子溶剂化:密度,温度和拓扑的作用

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摘要

We employ molecular dynamics simulations to study the structure and solvation thermodynamics of thiolated gold nanoparticles of size 1.2 and 1.6 nm with ligand of chain length 8-16 carbons in ethane and propane over a wide range of densities close to the critical isotherm. The Helmholtz free energy is estimated by explicitly calculating the change in entropy and internal energy of solvation, and the effect of density and temperature on fluctuation-driven inherent anisotropy in the ligand corona is characterized. Since the topological variation further accentuates this instantaneous asymmetry in the ligand cloud, the anisotropy with varying surface coverage and chain length is also studied including the solvent contributions to the entropic and energetic metrics. Our results are consistent with the experiment, suggesting a route of obtaining structural insights into solvation thermodynamics that could be useful for understanding the stability of nanoparticle dispersions. Published by AIP Publishing.
机译:我们采用分子动力学模拟,研究硫醇化金纳米颗粒的结构和溶剂化热力学,用乙烷中链长8-16个碳的配体和丙烷的配体,在临时临界等温线附近的宽范围内。通过明确计算溶剂化的熵和内部能量的变化来估计Helmholtz自由能,并且表征了密度和温度对配体电晕中的波动驱动的固有各向异性的影响。由于拓扑变异进一步突出了该配体云中这种瞬时不对称性,因此还研究了具有不同表面覆盖和链长的各向异性,包括对熵和能量指标的溶剂贡献。我们的结果与实验一致,建议在溶剂化热力学中获得结构见解的路线,这对于理解纳米粒子分散体的稳定性是有用的。通过AIP发布发布。

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