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激光织构化超亲水性磁响应倾斜微柱阵列实现多液滴的选择性操控,该微柱阵列具有超快重构速率。

Multiple-Droplet Selective Manipulation Enabled by Laser-Textured Hydrophobic Magnetism-Responsive Slanted Micropillar Arrays with an Ultrafast Reconfiguration Rate.

机构信息

School of Instrument Science and Opto-Electronics Engineering, Hefei University of Technology, Hefei 230009, China.

Anhui Province Key Laboratory of Measuring Theory and Precision Instrument, Hefei University of Technology, Hefei 230009, China.

出版信息

Langmuir. 2023 Feb 21;39(7):2589-2597. doi: 10.1021/acs.langmuir.2c02944. Epub 2023 Feb 12.

Abstract

Biomimetic structures based on the magnetic response have attracted ever-increasing attention in droplet manipulation. Till now, most methods for droplet manipulation by a magnetic response are only applicable to a single droplet. It is still a challenge to achieve on-demand and precise control of multiple droplets (≥2). In this paper, a strategy for on-demand manipulation of multiple droplets based on magnetism-responsive slanted micropillar arrays (MSMAs) is proposed. The Glaco-modified superhydrophobic surface is the basis of multiple-droplet manipulation. The droplet's motion mode (pinned, unidirectional, and bidirectional) can be readily fine-tuned by changing the volume of droplets and the speed of the magnetic field. The rapid movement of droplets (10-80 mm/s) in the horizontal direction is realized by the unidirectional waves of the micropillar array driven by a specific magnetic field. The bending angle of micropillars can be rapidly and reversibly adjusted from 0 to 90° under the action of a magnetic field. Meanwhile, the liquid-involved light, electric switch, and biomedical detection can be designed by manipulating the droplets on demand. The superiority of MSMAs in multiple-droplet programmable manipulation opens up an avenue for applications in microfluidic and biomedical engineering.

摘要

基于磁响应的仿生结构在液滴操控中引起了越来越多的关注。到目前为止,大多数通过磁响应操控液滴的方法仅适用于单个液滴。如何实现对多个液滴(≥2)的按需和精确控制仍然是一个挑战。本文提出了一种基于磁响应倾斜微柱阵列(MSMA)的按需操控多个液滴的策略。Glaco 修饰的超疏水表面是实现多液滴操控的基础。通过改变液滴的体积和磁场的速度,可以轻松调整液滴的运动模式(固定、单向和双向)。通过特定磁场驱动的微柱阵列的单向波,可以实现液滴在水平方向上的快速移动(10-80mm/s)。在磁场的作用下,微柱的弯曲角度可以快速、可逆地从 0 调整到 90°。同时,可以通过按需操控液滴来设计涉及液体的光、电开关和生物医学检测。MSMA 在多液滴可编程操控方面的优势为微流控和生物医学工程的应用开辟了新途径。

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