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Theoretical and numerical investigations of inverse patchy colloids in the fluid phase

机译:液相逆斑状胶体的理论和数值研究

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We investigate the structural and thermodynamic properties of a new class of patchy colloids, referred to as inverse patchy colloids (IPCs) in their fluid phase via both theoretical methods and simulations. IPCs are nano-or micro-meter sized particles with differently charged surface regions. We extend conventional integral equation schemes to this particular class of systems: our approach is based on the so-called multi-density Ornstein-Zernike equation, supplemented with the associative Percus-Yevick approximation (APY). To validate the accuracy of our framework, we compare the obtained results with data extracted from NpT and NVT Monte Carlo simulations. In addition, other theoretical approaches are used to calculate the properties of the system: the reference hypernetted-chain (RHNC) method and the Barker-Henderson thermodynamic perturbation theory. Both APY and RHNC frameworks provide accurate predictions for the pair distribution functions: APY results are in slightly better agreement with MC data, in particular at lower temperatures where the RHNC solution does not converge. (C) 2015 AIP Publishing LLC.
机译:我们通过理论方法和模拟研究了一类新的斑状胶体在其液相中的结构和热力学性质,这些反相胶体被称为逆斑状胶体。 IPC是具有不同电荷表面区域的纳米或微米级颗粒。我们将常规积分方程方案扩展到该类特定系统:我们的方法基于所谓的多密度Ornstein-Zernike方程,并辅之以Percus-Yevick关联(APY)。为了验证我们框架的准确性,我们将获得的结果与从NpT和NVT蒙特卡洛模拟中提取的数据进行比较。此外,还使用其他理论方法来计算系统的属性:参考超网链(RHNC)方法和Barker-Henderson热力学扰动理论。 APY和RHNC框架都可提供对对分布函数的准确预测:APY结果与MC数据稍好一致,尤其是在RHNC解决方案无法收敛的较低温度下。 (C)2015 AIP Publishing LLC。

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