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首页> 外文期刊>The Journal of Chemical Physics >Molecular dynamics study of nanoparticle stability at liquid interfaces: Effect of nanoparticle-solvent interaction and capillary waves
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Molecular dynamics study of nanoparticle stability at liquid interfaces: Effect of nanoparticle-solvent interaction and capillary waves

机译:纳米粒子在液体界面的稳定性的分子动力学研究:纳米粒子与溶剂相互作用和毛细管波的影响

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While the interaction of colloidal particles (sizes in excess of 100 nm) with liquid interfaces may be understood in terms of continuum models, which are grounded in macroscopic properties such as surface and line tensions, the behaviour of nanoparticles at liquid interfaces may be more complex. Recent simulations [D. L. Cheung and S. A. F. Bon, Phys. Rev. Lett. 102, 066103 (2009)]10.1103/PhysRevLett.102.066103 of nanoparticles at an idealised liquid-liquid interface showed that the nanoparticle-interface interaction range was larger than expected due, in part, to the action of thermal capillary waves. In this paper, molecular dynamics simulations of a Lennard-Jones nanoparticle in a binary Lennard-Jones mixture are used to confirm that these previous results hold for more realistic models. Furthermore by including attractive interactions between the nanoparticle and the solvent, it is found that the detachment energy decreases as the nanoparticle-solvent attraction increases. Comparison between the simulation results and recent theoretical predictions [H. Lehle and M. Oettel, J. Phys. Condens. Matter 20, 404224 (2008)]10.1088/0953-8984/20/40/404224 shows that for small particles the incorporation of capillary waves into the predicted effective nanoparticle-interface interaction improves agreement between simulation and theory.
机译:尽管胶体颗粒(尺寸超过100 nm)与液体界面的相互作用可以通过连续介质模型来理解,该模型基于宏观特性,例如表面和线张力,但纳米粒子在液体界面上的行为可能更复杂。最近的模拟[D. L.Cheung和S.A.F.Bon,物理牧师102,066103(2009)] 10.1103 / PhysRevLett.102.066103在理想的液-液界面处的纳米粒子显示,纳米粒子与界面的相互作用范围比预期的要大,这部分是由于热毛细管波的作用。在本文中,使用二元Lennard-Jones混合物中的Lennard-Jones纳米粒子的分子动力学模拟来确认这些先前的结果适用于更实际的模型。此外,通过包括纳米颗粒和溶剂之间的吸引相互作用,发现随着纳米颗粒-溶剂吸引力的增加,分离能降低。仿真结果与最新理论预测之间的比较[H. Lehle和M. Oettel,J。Phys。凝结。问题20,404224(2008)] 10.1088 / 0953-8984 / 20/40/404224表明,对于小颗粒,将毛细管波并入预测的有效纳米颗粒-界面相互作用可改善仿真与理论之间的一致性。

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