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Integrations of advanced functional materials and devices for microfluidic applications.

机译:用于微流体应用的先进功能材料和设备的集成。

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摘要

In realizing the full potential of lab-on-a-chip devices, it is necessary to integrate various functional components into the system. In this thesis, different types of advanced functional materials and devices are coupled into microfluidic systems to explore functional components.;By combining with hydrodynamics in microfluidic system, micromixer, microvalve and micropump were realized. An effective planar passive micromixer with relatively simple construction was developed based on chaotic velocity distribution in microchannels. On the other hand, a unique bubble generation technique has been developed and applied as micro-valve and micro-pump by utilizing laser-induced heat. It was demonstrated in the experiments that, efficient generation of thermal bubbles with controllable sizes can be achieved using different geometries of chromium pads immersed in various types of fluids. Effective blocking of microfluidic channel and direct pumping of the fluid with selectable directions have also been demonstrated, respectively.;To develop alternative bioassay components, various piezoelectric sensors have been integrated into microfluidic systems for in-situ dynamic fluid properties monitoring and chemical and biological analysis. Integrations of quartz crystal microbalance and lead magnesium niobate-lead titanate (PMN-PT) single crystal resonators show the sensitive and label-free capabilities of the piezoelectric sensing in microfluidic system. Flow rates, viscosity and mass accumulations can be well detected by these systems from observing the resonant frequency shift. Such kind of microfluidic system was further developed by modifying the surface with a nickel pillar array to introduce active magnetic force control for the piezoelectric sensor. The chip was succeeded in trapping and detecting target cancer cells.;Graphene was introduced into microfluidic system for the first time. Hydrodynamic property of graphene was analyzed with the fabricated graphene-modified microchannels. Results show that the wetting property dominates the hydrodynamic behavior rather than the nanotribological characteristics for graphene sheet. Furthermore, a novel graphene FET based on fluid gate was developed and analyzed. The transistor exhibits the advantage of low power consumption. Experimental results also demonstrated the fact that threshold voltage and output current of the graphene FETs can be tuned accordingly by the wetting property and electrical double layer of the top fluid gates.
机译:为了充分发挥芯片实验室设备的潜力,有必要将各种功能组件集成到系统中。本文将不同类型的先进功能材料和装置耦合到微流体系统中,以探索功能部件。通过结合微流体系统中的流体动力学,实现了微混合器,微阀和微泵。基于微通道中的混沌速度分布,开发了一种结构相对简单的有效平面无源微混合器。另一方面,已经开发了独特的气泡产生技术,并利用激光诱导的热量将其用作微型阀和微型泵。实验证明,使用浸入各种流体中的铬垫板的不同几何形状,可以有效生成尺寸可控的热气泡。还已经分别证明了有效地阻断微流体通道和以可选的方向直接泵送流体。为了开发替代的生物测定组件,已将各种压电传感器集成到微流体系统中,以进行原位动态流体性质监测以及化学和生物分析。石英晶体微天平和铌酸铅镁-钛酸铅(PMN-PT)单晶谐振器的集成显示了微流体系统中压电传感的灵敏性和无标记性。通过观察共振频率偏移,这些系统可以很好地检测流速,粘度和质量累积。通过用镍柱阵列修饰表面以引入压电传感器的主动磁力控制,进一步开发了这种微流体系统。该芯片成功捕获和检测了目标癌细胞。石墨烯首次引入微流控系统。用制造的石墨烯修饰的微通道分析了石墨烯的流体力学性质。结果表明,润湿性决定了石墨烯片的流体力学行为,而不是其纳米摩擦学特性。此外,开发并分析了一种基于流体门的新型石墨烯FET。该晶体管具有低功耗的优点。实验结果还表明,可以通过顶部流体浇口的润湿特性和双电层相应地调整石墨烯FET的阈值电压和输出电流。

著录项

  • 作者

    Zhang, Kai.;

  • 作者单位

    Hong Kong Polytechnic University (Hong Kong).;

  • 授予单位 Hong Kong Polytechnic University (Hong Kong).;
  • 学科 Applied Mechanics.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 173 p.
  • 总页数 173
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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