Institute of Acoustics, Faculty of Physics, Adam Mickiewicz University, Umultowska 85, 61-614 Poznań, Poland.
Soft Matter. 2018 Jul 4;14(26):5442-5451. doi: 10.1039/c8sm00915e.
Drops covered by adsorbed particles are a prominent research topic because they hold promise for a variety of practical applications. Unlocking the enormous potential of particle-laden drops in new material fabrication, for instance, requires understanding how surface particles affect the electrical and deformation properties of drops, as well as developing new routes for particle manipulation at the interface of drops. In this study, we utilized electric fields to experimentally investigate the mechanics of particle-covered silicone oil drops suspended in castor oil, as well as particle assembly at drop surfaces. We used particles with electrical conductivities ranging from insulating polystyrene to highly conductive silver. When subjected to electric fields, drops can change shape, rotate, or break apart. In the first part of this work, we demonstrate how the deformation magnitude and shape of drops, as well as their electrical properties, are affected by electric field strength, particle size, conductivity, and coverage. We also discuss the role of electrohydrodynamic flows on drop deformation. In the second part, we present the electric field-directed assembly and organization of particles at drop surfaces. In this regard, we studied various parameters in detail, including electric field strength, particle size, coverage, and electrical conductivity. Finally, we present a novel method for controlling the local particle coverage and packing of particles on drop surfaces by simply tuning the frequency of the applied electric field. This approach is expected to find uses in optical materials and applications.
被吸附粒子覆盖的液滴是一个重要的研究课题,因为它们在各种实际应用中具有很大的潜力。例如,在新材料制造中解锁颗粒负载液滴的巨大潜力,需要了解表面颗粒如何影响液滴的电学和变形特性,以及开发新的颗粒在液滴界面处的操纵途径。在这项研究中,我们利用电场实验研究了悬浮在蓖麻油中的硅油液滴的力学特性,以及颗粒在液滴表面的组装。我们使用了从绝缘聚苯乙烯到高导电性银的各种导电性颗粒。当受到电场作用时,液滴可以改变形状、旋转或分裂。在这项工作的第一部分,我们展示了电场强度、颗粒大小、导电性和覆盖率如何影响液滴的变形幅度和形状以及它们的电学性质。我们还讨论了电动力学流对液滴变形的作用。在第二部分,我们展示了电场引导的颗粒在液滴表面的组装和组织。在这方面,我们详细研究了各种参数,包括电场强度、颗粒大小、覆盖率和导电性。最后,我们提出了一种通过简单调整施加电场的频率来控制液滴表面局部颗粒覆盖率和颗粒堆积的新方法。这种方法有望在光学材料和应用中得到应用。