Bernet Thomas, Ravipati Srikanth, Cárdenas Harry, Müller Erich A, Jackson George
Department of Chemical Engineering, Imperial College London, South Kensington Campus, London SW7 2AZ, United Kingdom.
Université de Pau et des Pays de l'Adour, E2S UPPA, CNRS, Total, LFCR, Anglet, France.
J Chem Phys. 2024 Sep 7;161(9). doi: 10.1063/5.0219968.
A free-energy functional is presented to explicitly take into account pair correlations between molecules in inhomogeneous fluids. The framework of classical density functional theory (DFT) is used to describe the variation in the density of molecules interacting through a Mie (generalized Lennard-Jones) potential. Grand Canonical Monte Carlo simulations are performed for the systems to validate the new functional. The statistical associating fluid theory developed for Mie fluids (SAFT-VR Mie) is selected as a reference for the homogeneous bulk limit of the DFT and is applied here to systems of spherical non-associating particles. The importance of a correct description of the pair correlations for a reliable representation of the free energy in the development of the equation of state is duly noted. Following the Barker-Henderson high-temperature expansion, an analogous formulation is proposed from the general DFT formalism to develop an inhomogeneous equivalent of the SAFT-VR Mie free energy as a functional of the one-body density. In order to make use of this new functional in adsorption studies, a non-local version of the DFT is considered, with specific weighted densities describing the effects of neighboring molecules. The computation of these quantities is possible in three-dimensional space for any pore geometry with repulsive or attractive walls. We showcase examples to validate the new functional, revealing a very good agreement with molecular simulation. The new SAFT-DFT approach is well-adapted to describe realistic complex fluids.
提出了一种自由能泛函,以明确考虑非均匀流体中分子间的对关联。采用经典密度泛函理论(DFT)框架来描述通过米氏(广义 Lennard-Jones)势相互作用的分子密度变化。对这些系统进行巨正则蒙特卡罗模拟以验证新的泛函。为米氏流体开发的统计缔合流体理论(SAFT-VR Mie)被选作 DFT 均匀体相极限的参考,并在此应用于球形非缔合粒子系统。在状态方程的发展中,正确描述对关联对于可靠表示自由能的重要性得到了充分重视。遵循 Barker-Henderson 高温展开,从一般 DFT 形式主义提出了一种类似的公式,以发展作为一体密度泛函的 SAFT-VR Mie 自由能的非均匀等效形式。为了在吸附研究中使用这种新的泛函,考虑了 DFT 的非局部版本,用特定的加权密度描述相邻分子的影响。对于具有排斥或吸引壁的任何孔隙几何形状,在三维空间中都可以计算这些量。我们展示了验证新泛函的示例,结果表明与分子模拟非常吻合。新的 SAFT-DFT 方法非常适合描述实际的复杂流体。