Mazaltarim Ali J, Bowen John J, Taylor Jay M, Morin Stephen A
Department of Chemistry, University of Nebraska - Lincoln, Lincoln, NE, USA.
Nebraska Center for Materials and Nanoscience, University of Nebraska - Lincoln, Lincoln, NE, USA.
Nat Commun. 2021 May 25;12(1):3114. doi: 10.1038/s41467-021-23383-7.
Materials and strategies applicable to the dynamic transport of microdroplets are relevant to surface fluidics, self-cleaning materials, thermal management systems, and analytical devices. Techniques based on electrowetting, topographic micropatterns, and thermal/chemical gradients have advanced considerably, but dynamic microdroplet transport remains a challenge. This manuscript reports the fabrication of mechano-tunable, microtextured chemical gradients on elastomer films and their use in controlled microdroplet transport. Specifically, discreet mechanical deformations of these films enabled dynamic tuning of the microtextures and thus transport along surface-chemical gradients. The interplay between the driving force of the chemical gradient and the microtopography was characterized, facilitating accurate prediction of the conditions (droplet radius and roughness) which supported transport. In this work, the use of microtextured surface chemical gradients in mechano-adaptive materials with microdroplet manipulation functionality was highlighted.
适用于微滴动态传输的材料和策略与表面流体学、自清洁材料、热管理系统及分析设备相关。基于电润湿、微地形图案以及热/化学梯度的技术已有显著进展,但动态微滴传输仍是一项挑战。本论文报道了在弹性体薄膜上制备机械可调的微纹理化学梯度及其在可控微滴传输中的应用。具体而言,这些薄膜的离散机械变形能够实现微纹理的动态调节,进而实现沿表面化学梯度的传输。对化学梯度驱动力与微观形貌之间的相互作用进行了表征,有助于准确预测支持传输的条件(液滴半径和粗糙度)。在这项工作中,突出了具有微滴操控功能的机械自适应材料中微纹理表面化学梯度的应用。