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Sign change in the net force in sphere-plate and sphere-sphere systems immersed in nonpolar critical fluid due to the interplay between the critical Casimir and dispersion van derWaals forces

机译:由于临界Casimir和分散范德沃尔队力之间的相互作用,球形板中的净力和球形球体系统中的净力变为浸入非极性临界流体

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We study systems in which both long-ranged van der Waals and critical Casimir interactions are present. The latter arise as an effective force between bodies when immersed in a near-critical medium, say a nonpolar one-component fluid or a binary liquid mixture. They are due to the fact that the presence of the bodies modifies the order parameter profile of the medium between them as well as the spectrum of its allowed fluctuations. We study the interplay between these forces, as well as the total force (TF) between a spherical colloid particle and a thick planar slab and between two spherical colloid particles. We do that using general scaling arguments and mean-field-type calculations utilizing the Derjaguin and the surface integration approaches. They both are based on data of the forces between two parallel slabs separated at a distance L from each other, confining the fluctuating fluid medium characterized by its temperature T and chemical potential μ. The surfaces of the colloid particles and the slab are coated by thin layers exerting strong preference to the liquid phase of the fluid, or one of the components of the mixture, modeled by strong adsorbing local surface potentials, ensuring the so-called (+,+) boundary conditions. On the other hand, the core region of the slab and the particles influence the fluid by long-ranged competing dispersion potentials.We demonstrate that for a suitable set of colloids-fluid, slab-fluid, and fluid-fluid coupling parameters, the competition between the effects due to the coatings and the core regions of the objects involved result, when one changes T , μ, or L, in sign change of the Casimir force (CF) and the TF acting between the colloid and the slab, as well as between the colloids. This can be used for governing the behavior of objects, say colloidal particles, at small distances, say in colloid suspensions for preventing flocculation. It can also provide a strategy for solving problems with handling, feeding, trappin
机译:我们研究了长距离van der腰围和关键购物中心交互的系统。当浸入近乎临界介质时,后者由于体之间的有效力而表示,说出非极性单组分流体或二元液体混合物。它们是由于身体的存在改变它们之间介质的顺序参数轮廓以及其允许的波动的光谱。我们研究了这些力之间的相互作用,以及球形胶体颗粒和厚平面板之间以及两个球形胶体颗粒之间的总力(TF)。我们使用普通缩放参数和使用Derjaguin和Surface集成方法的均值字段型计算来执行此操作。它们都基于两个平行板之间的力的数据,在距离距离L处于距离L处,局限于其温度T和化学电位μ特征的波动流体介质。胶体颗粒的表面和板坯通过施加强烈偏好于流体的液相,或通过强烈吸附局部电位的混合物的一种组分,确保所谓的(+, +)边界条件。另一方面,板坯和颗粒的核心区域通过长距离的竞争色散电位影响流体。我们证明了用于合适组的胶体 - 流体,平板流体和流体流体耦合参数,竞争在涂层的效果和涉及的物体的核心区域之间,当一个改变t,μ或l时,在Casimir力(Cf)的符号变化中,也可以在胶体和板之间作用之间的TF与胶体之间一样。这可以用于治疗物体的行为,说胶体颗粒,在小距离,在胶体悬浮液中说,用于防止絮凝。它还可以提供一种解决处理,喂养,特拉普因问题的策略

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