Loudet J-C
Université de Bordeaux, CNRS, Centre de Recherche Paul Pascal (UMR 5031), 33600 Pessac, France.
Phys Rev E. 2024 May;109(5-1):054603. doi: 10.1103/PhysRevE.109.054603.
We present numerical simulations on pairwise interactions between particles trapped at an isotropic-nematic liquid crystal (Iso-N) interface. The particles are subject to elastocapillary interactions arising from interfacial deformations and elastic distortions of the nematic phase. We use a recent model based on a phase-field approach [see Qiu et al., Phys. Rev. E 103, 022706 (2021)2470-004510.1103/PhysRevE.103.022706] to take into account the coupling between elastic and capillary phenomena. The pair potential is computed in a two-dimensional geometry for a range of particle separations and two anchoring configurations. The first configuration leads to the presence of an anchoring conflict at the three-phase contact line, whereas such a conflict does not exist for the second one. In the first case, the results show that significant interfacial deformations and downward particle displacements occur, resulting in sizable attractive capillary interactions able to overcome repulsive elastic forces at intermediate separations. The pair potential exhibits an equilibrium distance since elastic repulsions prevail at short range and prevent the clustering of particles. However, in the absence of any anchoring conflict, the interfacial deformations are very small and the capillary forces have a negligible contribution to the pair potential, which is fully repulsive and overwhelmed by elastic forces. These results suggest that the self-assembly properties of particles floating at Iso-N interfaces might be controlled by tuning anchoring conflicts.
我们展示了关于捕获在各向同性向列相液晶(Iso-N)界面处的粒子间成对相互作用的数值模拟。这些粒子受到由向列相的界面变形和弹性畸变引起的弹性毛细管相互作用。我们使用基于相场方法的最新模型[见Qiu等人,《物理评论E》103, 022706 (2021)2470 - 004510.1103/PhysRevE.103.022706]来考虑弹性和毛细管现象之间的耦合。在二维几何结构中针对一系列粒子间距和两种锚定构型计算了对势。第一种构型导致在三相接触线处存在锚定冲突,而第二种构型不存在这种冲突。在第一种情况下,结果表明发生了显著的界面变形和粒子向下位移,从而在中间间距处产生了相当大的吸引性毛细管相互作用,能够克服排斥性弹性力。对势呈现出一个平衡距离,因为在短程范围内弹性排斥占主导并阻止粒子聚集。然而,在不存在任何锚定冲突的情况下,界面变形非常小,毛细管力对对势的贡献可忽略不计,对势完全是排斥性的且被弹性力所主导。这些结果表明,漂浮在Iso-N界面处的粒子的自组装特性可能通过调节锚定冲突来控制。