通过溶解不稳定性从水溶液中形成晶体图案

IF 8.3 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Samantha A. McBride, Severine Atis, Amir A. Pahlavan, Kripa K. Varanasi
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引用次数: 0

摘要

可以利用流体的不稳定性在纳米和微米尺度上实现图案结构的简便自组装。液滴蒸发自组装是一种简单的技术,由于同时存在温度和溶液梯度而产生的多种流体不稳定性,它可以实现一系列图案化行为。然而,这种方法对可能出现的图案及其形态的可控性有限。在这里,我们证明了含硫酸钙的水滴在亲水性和超亲水性基底上蒸发时会产生一系列不同的晶体形态,包括六边形阵列、分支和锯齿结构。接触线动力学和蒸发率决定了哪些流体不稳定性最有可能出现,因此会出现不同的图案体系。受控自组装不稳定性背后的基本物理机制涉及马兰戈尼流和强制润湿/脱水。我们还证明,这些由水溶性无机晶体组成的图案可以作为可持续且易于去除的掩膜,应用于微观制造领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Crystal Patterning from Aqueous Solutions via Solutal Instabilities

Crystal Patterning from Aqueous Solutions via Solutal Instabilities
Fluid instabilities can be harnessed for facile self-assembly of patterned structures on the nano- and microscale. Evaporative self-assembly from drops is one simple technique that enables a range of patterning behaviors due to the multitude of fluid instabilities that arise due to the simultaneous existence of temperature and solutal gradients. However, the method suffers from limited controllability over patterns that can arise and their morphology. Here, we demonstrate that a range of distinct crystalline patterns including hexagonal arrays, branches, and sawtooth structures emerge from evaporation of water drops containing calcium sulfate on hydrophilic and superhydrophilic substrates. Different pattern regimes emerge as a function of contact line dynamics and evaporation rates, which dictate which fluid instabilities are most likely to emerge. The underlying physical mechanisms behind instability for controlled self-assembly involve Marangoni flows and forced wetting/dewetting. We also demonstrate that these patterns composed of water-soluble inorganic crystals can serve as sustainable and easily removable masks for applications in microscale fabrication.
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来源期刊
ACS Applied Materials & Interfaces
ACS Applied Materials & Interfaces 工程技术-材料科学:综合
CiteScore
16.00
自引率
6.30%
发文量
4978
审稿时长
1.8 months
期刊介绍: ACS Applied Materials & Interfaces is a leading interdisciplinary journal that brings together chemists, engineers, physicists, and biologists to explore the development and utilization of newly-discovered materials and interfacial processes for specific applications. Our journal has experienced remarkable growth since its establishment in 2009, both in terms of the number of articles published and the impact of the research showcased. We are proud to foster a truly global community, with the majority of published articles originating from outside the United States, reflecting the rapid growth of applied research worldwide.
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