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SU-8 Microfluidic Channels with Porous Sidewalls for Biological Applications

机译:具有生物应用的多孔侧壁的SU-8微流体通道

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摘要

Microfluidic devices are currently being utilized in many types of BioMEMS and medical applications. In these systems, the interaction between the surface and the biological specimen depends critically on surface properties. The surface roughness and chemistry as well as the surface area to which the biomolecules or cells are exposed affect this interaction. Modification of the surface of microfluidic channels can improve the operation of the device by influencing the behavior of the biological specimens that are flowing through it. SU-8 is an epoxy-based, negative photoresist that has been previously used to create covered channels. Once cured, it is both chemically and thermally stable. It is also optically transparent above 360 nm, which allows optical measurements, including fluorescence imaging, to be taken inside the channel. SU-8 microchannels have been fabricated with a porous layer on the sidewalls by the photo-lithographic process, which is reproducible with precisely controlled channel dimensions. In order to attain these porous sidewalls, no additional fabrication steps are required outside the standard photo-lithographic process. The porosity of the sidewalls is a result of incomplete cross-linking of the polymer. The obtained porous surfaces can be specially treated to provide conditions preferable for biological interactions. The porous layer increases the internal surface area available on the sidewalls, which make these microfluidic channels preferable for biological applications. This paper describes the details of the fabrication process and the experiments that verify the benefit of using SU-8 microchannels with porous sidewalls.
机译:目前,微流体装置正在许多类型的BioMEMS和医学应用中使用。在这些系统中,表面和生物样本之间的相互作用主要取决于表面性质。生物分子或细胞所暴露的表面粗糙度和化学性质以及表面积会影响这种相互作用。微流体通道表面的修饰可通过影响流经该设备的生物样本的行为来改善该设备的操作。 SU-8是一种基于环氧的负性光刻胶,以前已用于创建覆盖通道。固化后,既具有化学稳定性,也具有热稳定性。它在360 nm以上也是透光的,从而可以在通道内进行光学测量,包括荧光成像。 SU-8微通道已通过光刻工艺在侧壁上制造了多孔层,可在精确控制通道尺寸的情况下进行重制。为了获得这些多孔侧壁,在标准光刻工艺之外不需要额外的制造步骤。侧壁的孔隙率是聚合物不完全交联的结果。可以对获得的多孔表面进行特殊处理,以提供优选的生物学相互作用条件。多孔层增加了侧壁上可用的内表面积,这使得这些微流体通道对于生物学应用而言是优选的。本文介绍了制造工艺的细节以及验证使用带有多孔侧壁的SU-8微通道的好处的实验。

著录项

  • 来源
  • 会议地点 San Jose CA(US)
  • 作者单位

    College of Nanoscale Science and Engineering, University at Albany, State University of New York 253 Fuller Rd. Albany, NY 12203;

    College of Nanoscale Science and Engineering, University at Albany, State University of New York 253 Fuller Rd. Albany, NY 12203;

    College of Nanoscale Science and Engineering, University at Albany, State University of New York 253 Fuller Rd. Albany, NY 12203;

    College of Nanoscale Science and Engineering, University at Albany, State University of New York 253 Fuller Rd. Albany, NY 12203;

    College of Nanoscale Science and Engineering, University at Albany, State University of New York 253 Fuller Rd. Albany, NY 12203;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    SU-8; porous sidewalls; microfluidics; silanization; antibody immobilization;

    机译:SU-8;多孔侧壁微流体硅烷化抗体固定;

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