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Polymer microelectromechanical systems: Fabrication and applications in biology and biological force measurements.

机译:聚合物微机电系统:在生物学和生物力测量中的制造和应用。

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摘要

Polymer materials are increasingly being utilized in biomedical micro- and nanotechnolgy applications. This trend has been driven by a several factors ranging from materials compatibility to cost. The manufacturing techniques used to produce these devices are considerably less mature than their silicon-based counterparts. New manufacturing techniques are needed to address unique processing challenges posed by polymer materials. To this end, we have developed a set of soft lithography based micromolding techniques for fabrication of polymer microstructures and devices from a wide range of materials. Materials include common thermoplastic polymers such as poly(methyl methacrylate) (PMMA) and polystyrene as well as functional materials such as conducting polymers. The processing techniques developed through this work are capable of producing a wide range of structures including continuous microstructured films, isolated polymer microstructures, and suspended structures. The nature of the materials and the non-cleanroom based micromolding processes makes these techniques considerably more cost effective with respect to both materials and processing costs.; In addition to developing processing techniques, characterization of the processes as well as the materials is a critical step for implementation of polymers in practical device applications. Process characterization was performed by systematically varying process parameters and evaluating the resulting microstructures using common micro- and nanoscale characterization techniques. Scanning electron microscopy, atomic force microscopy, and optical microscopy were all used to evaluate the resulting polymer structures. Nanoindentation techniques were used to characterize the mechanical properties of the materials. Elastic modulus, hardness, creep, scratch resistance, and yield strength of several polymer MEMS materials were evaluated.; Application of these techniques for development of functional devices is ultimately the goal. We have used the processing techniques that we have developed to fabricate and test three polymer MEMS devices for biological applications. The first is a microfabricated membrane system for isolation of individual cells or cell clusters. This device could be utilized in a variety of cell biology applications including single cell experimentation, cell cluster biology, and tissue engineering. The other two devices were developed for measuring low magnitude biological forces. A polymer cantilever force sensor was developed for measuring contractile forces produced by fibroblast cells. This device could be used in cell mechanobiology studies, drug evaluation, and cell-based biosensing. The final device is an adapted polymer cantilever sensor for measuring forces produced by protein aggregates known a forisomes. This unique biomaterial could be utilized as a valve or actuator in microdevices.
机译:聚合物材料越来越多地用于生物医学的微技术和纳米技术应用中。从材料兼容性到成本的多种因素推动了这一趋势。用于生产这些设备的制造技术远不如其基于硅的同类产品成熟。需要新的制造技术来应对聚合物材料带来的独特加工挑战。为此,我们已经开发了一套基于软光刻的微成型技术,可以用多种材料制造聚合物微结构和器件。材料包括常见的热塑性聚合物,例如聚甲基丙烯酸甲酯(PMMA)和聚苯乙烯,以及功能材料,例如导电聚合物。通过这项工作开发的加工技术能够生产各种结构,包括连续的微结构化薄膜,孤立的聚合物微结构和悬浮结构。材料的性质和基于非洁净室的微成型工艺使这些技术在材料和加工成本方面都更具成本效益。除了开发加工技术外,工艺和材料的表征对于在实际设备应用中实施聚合物也至关重要。通过系统地改变工艺参数并使用常见的微米级和纳米级表征技术评估所得的微观结构来进行工艺表征。扫描电子显微镜,原子力显微镜和光学显微镜均用于评估所得的聚合物结构。纳米压痕技术用于表征材料的机械性能。评估了几种聚合物MEMS材料的弹性模量,硬度,蠕变,耐刮擦性和屈服强度。将这些技术应用于功能设备的开发是最终目标。我们使用了已开发的处理技术来制造和测试三种用于生物应用的聚合物MEMS器件。第一个是用于分离单个细胞或细胞簇的微细膜系统。该设备可用于多种细胞生物学应用中,包括单细胞实验,细胞簇生物学和组织工程。另外两个设备是为测量低强度生物力而开发的。开发了一种聚合物悬臂力传感器,用于测量成纤维细胞产生的收缩力。该设备可用于细胞力学生物学研究,药物评估和基于细胞的生物传感。最终的设备是适用于聚合物悬臂梁的传感器,用于测量已知有孔的蛋白质聚集体产生的力。这种独特的生物材料可以用作微型设备中的阀门或执行器。

著录项

  • 作者

    Ferrell, Nicholas J.;

  • 作者单位

    The Ohio State University.;

  • 授予单位 The Ohio State University.;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 296 p.
  • 总页数 296
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;
  • 关键词

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