Ardham Vikram Reddy, Leroy Frédéric
Eduard-Zintl-Institut für Anorganische und Physikalische Chemie, Technische Universität Darmstadt , Alarich-Weiss-Strasse 8, 64287 Darmstadt, Hessen, Germany.
J Phys Chem B. 2018 Mar 1;122(8):2396-2407. doi: 10.1021/acs.jpcb.7b11173. Epub 2018 Feb 16.
The high interfacial tension between two immiscible liquids can provide the necessary driving force for the self-assembly of nanoparticles at the interface. Particularly, the interface between water and oily liquids (hydrocarbon chains) has been exploited to prepare networks of highly interconnected graphene sheets of only a few layers thickness, which are well suited for industrial applications. Studying such complex systems through particle-based simulations could greatly enhance the understanding of the various driving forces in action and could possibly give more control over the self-assembly process. However, the interaction potentials used in particle-based simulations are typically derived by reproducing bulk properties and are therefore not suitable for describing systems dominated by interfaces. To address this issue, we introduce a methodology to derive solid-liquid interaction potentials that yield an accurate representation of the balance between interfacial interactions at atomistic and coarse-grained resolutions. Our approach is validated through its ability to lead to the adsorption of graphene nanoflakes at the interface between water and n-hexane. The development of accurate coarse-grained potentials that our approach enables will allow us to perform large-scale simulations to study the assembly of graphene nanoparticles at the interface between immiscible liquids. Our methodology is illustrated through a simulation of many graphene nanoflakes adsorbing at the interface.
两种互不相溶的液体之间的高界面张力可为纳米颗粒在界面处的自组装提供必要的驱动力。特别是,水与油性液体(烃链)之间的界面已被用于制备仅几层厚度的高度互连的石墨烯片网络,这非常适合工业应用。通过基于粒子的模拟研究此类复杂系统,可以极大地增进对各种作用驱动力的理解,并有可能对自组装过程进行更多控制。然而,基于粒子的模拟中使用的相互作用势通常是通过再现体相性质推导出来的,因此不适用于描述以界面为主导的系统。为了解决这个问题,我们引入了一种方法来推导固液相互作用势,该势能够在原子和粗粒度分辨率下准确表示界面相互作用之间的平衡。我们的方法通过其导致石墨烯纳米片在水和正己烷之间的界面处吸附的能力得到验证。我们的方法所实现的精确粗粒度势的开发将使我们能够进行大规模模拟,以研究石墨烯纳米颗粒在互不相溶液体之间的界面处的组装。我们通过对许多石墨烯纳米片在界面处吸附的模拟来说明我们的方法。