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Study on Manipulations of Fluids in Micro-scale and Their Applications in Physical, Bio/chemistry.

机译:微尺度流体操纵及其在物理,生物/化学中的应用研究。

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摘要

Microfluidics is a highly interdisciplinary research field which manipulates, controls and analyzes fluids in micro-scale for physical and bio/chemical applications. In this thesis, several aspects of fluid manipulations in micro-scale were studied, discussed and employed for demonstrations of practical utilizations.;To begin with, mixing in continuous flow microfluidic was raised and investigated. A simple method for mixing actuation based on magnetism was proposed and realized via integration of magnetically functionalized micropillar arrays inside the microfluidic channel.With such technique, microfluidic mixing could be swiftly switched on and off via simple application or retraction of the magnetic field. Thereafter, in Chapter 3 we mainly focused on how to establish stable while tunable concentration gradients inside microfluidic network using a simple design. The proposed scheme could also be modified with on-chip pneumatic actuated valve to realize pulsatile/temporal concentration gradients simultaneously in ten microfluidic branches. We further applied such methodology to obtain roughness gradients onPolydimethylsiloxane (PDMS) surface via combinations of the microfluidic network andphoto-polymerizations. The obtained materials were utilized in parallel cell culture to figure out the relationship between substrate morphologies and the cell behaviors.;In the second part of this work, we emphasized on manipulations on microdroplets insidethe microfluidic channel and explored related applications in bio/chemical aspects. Firstly, microdroplet-based microfluidic universal logic gates were successfully demonstrated vialiquid-electronic hybrid divider. For application based on such novel scheme of control lable droplet generation, on-demand chemical reaction within paired microdroplets was presented using IF logic gate. Followed by this, another important operation of microdroplet - splitting -was investigated. Addition lateral continuous flow was applied at the bifurcation as a mediumto controllably divide microdroplets with highly tunable splitting ratios. Related physical mechanism was proposed and such approach was adopted further for rapid synthesis of multi-scale microspheres.
机译:微流体学是一个高度跨学科的研究领域,它以微观尺度操纵,控制和分析流体,以用于物理和生物/化学应用。本文从微观角度研究,讨论了流体操纵的几个方面,并将其用于实际应用的演示。首先,提出并研究了连续流微流体的混合。提出并实现了一种简单的基于磁力的混合驱动方法,该方法是通过将磁性功能化的微柱阵列集成到微流体通道中来实现的,通过这种技术,可以通过简单地施加或收回磁场来快速打开和关闭微流体混合。此后,在第3章中,我们主要关注如何使用简单的设计在微流体网络内部建立稳定且可调的浓度梯度。所提出的方案也可以用片上气动阀来修改,以同时在十个微流分支中实现脉动/时间浓度梯度。我们进一步应用了这种方法,通过微流体网络和光聚合的结合在聚二甲基硅氧烷(PDMS)表面上获得粗糙度梯度。获得的材料用于平行细胞培养,以弄清底物形态与细胞行为之间的关系。在本工作的第二部分,我们着重于对微流体通道内微滴的操作,并探讨了在生物/化学方面的相关应用。首先,通过液电子混合分配器成功地证明了基于微滴的微流通用逻辑门。对于基于这种可控制的液滴产生的新颖方案的应用,使用IF逻辑门提出了成对的微液滴内的按需化学反应。随后,研究了微滴的另一个重要操作-分裂。在分支处施加附加的横向连续流作为介质,以可调节的分裂比可控制地划分微滴。提出了相关的物理机理,并进一步采用了这种方法来快速合成多尺度微球。

著录项

  • 作者

    Zhou, Bingpu.;

  • 作者单位

    Hong Kong University of Science and Technology (Hong Kong).;

  • 授予单位 Hong Kong University of Science and Technology (Hong Kong).;
  • 学科 Materials science.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 139 p.
  • 总页数 139
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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