Zargartalebi Hossein, Hejazi S Hossein, Sanati-Nezhad Amir
Department of Mechanical and Manufacturing Engineering, University of Calgary, Calgary, AB, T2N 1N4, Canada.
BioMEMS and Bioinspired Microfluidic Laboratory, Department of Biomedical Engineering, University of Calgary, Calgary, AB, T2N 1N4, Canada.
Nat Commun. 2022 Jun 2;13(1):3085. doi: 10.1038/s41467-022-30660-6.
The evaporation of particle-laden sessile droplets is associated with capillary-driven outward flow and leaves nonuniform coffee-ring-like particle patterns due to far-from-equilibrium effects. Traditionally, the surface energies of the drop and solid phases are tuned, or external forces are applied to suppress the coffee-ring; however, achieving a uniform and repeatable particle deposition is extremely challenging. Here, we report a simple, scalable, and noninvasive technique that yields uniform and exceptionally ordered particle deposits on a microscale surface area by placing the droplet on a near neutral-wet shadow mold attached to a hydrophilic substrate. The simplicity of the method, no external forces, and no tuning materials' physiochemical properties make the present generic approach an excellent candidate for a wide range of sensitive applications. We demonstrate the utility of this method for fabricating ordered mono- and multilayer patternable coatings, producing nanofilters with controlled pore size, and creating reproducible functionalized nanosensors.
载有颗粒的固着液滴的蒸发与毛细管驱动的外流相关联,并且由于远离平衡效应而留下不均匀的咖啡环状颗粒图案。传统上,会调节液滴和固相的表面能,或者施加外力来抑制咖啡环;然而,实现均匀且可重复的颗粒沉积极具挑战性。在此,我们报告一种简单、可扩展且非侵入性的技术,通过将液滴放置在附着于亲水基底的近中性湿阴影模具上,可在微尺度表面积上产生均匀且异常有序的颗粒沉积物。该方法的简单性、无需外力以及无需调节材料的物理化学性质,使得这种通用方法成为广泛敏感应用的极佳候选方案。我们展示了该方法在制造有序单层和多层可图案化涂层、生产具有可控孔径的纳米过滤器以及创建可重复的功能化纳米传感器方面的实用性。