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用于生物分析和太空飞行应用的高质量玻璃微流控装置的制造。

Fabrication of high-quality glass microfluidic devices for bioanalytical and space flight applications.

作者信息

Golozar Matin, Chu Wai K, Casto Laura D, McCauley Jeremy, Butterworth Anna L, Mathies Richard A

机构信息

Department of Chemistry and Biophysics Graduate Group, University of California, Berkeley, CA 94720, United States.

Space Sciences Laboratory, University of California, 7 Gauss Way, Berkeley, CA 94720, United States.

出版信息

MethodsX. 2020 Aug 27;7:101043. doi: 10.1016/j.mex.2020.101043. eCollection 2020.

Abstract

Microfabricated glass microfluidic and Capillary Electrophoresis (CE) devices have been utilized in a wide variety of applications over the past thirty years. At the Berkeley Space Sciences Laboratory, we are working to further expand this technology by developing analytical instruments to chemically explore our solar system. This effort requires improving the quality and reliability of glass microfabrication through quality control procedures at every stage of design and manufacture. This manuscript provides detailed information on microfabrication technology for the production of high-quality glass microfluidic chips in compliance with industrial standards and space flight instrumentation quality control.•The methodological protocol provided in this paper includes the scope of each step of the manufacturing process, materials and technologies recommended and the specific challenges that often confront the process developer.•Types and sources of fabrication error at every stage have been identified and their solutions have been proposed and verified.•We present robust and rigorous manufacturing and quality control procedures that will assist other researchers in achieving the highest possible quality glass microdevices using the latest apparatus in a routine and reliable fashion.

摘要

在过去三十年中,微纳加工的玻璃微流控和毛细管电泳(CE)设备已被广泛应用于各种领域。在伯克利空间科学实验室,我们正致力于通过开发用于对太阳系进行化学探测的分析仪器来进一步拓展这项技术。这项工作需要在设计和制造的每个阶段通过质量控制程序来提高玻璃微纳加工的质量和可靠性。本手稿提供了关于按照工业标准和航天仪器质量控制要求生产高质量玻璃微流控芯片的微纳加工技术的详细信息。

• 本文提供的方法协议包括制造过程每个步骤的范围、推荐的材料和技术以及工艺开发人员经常面临的具体挑战。

• 已识别出每个阶段制造误差的类型和来源,并提出并验证了其解决方案。

• 我们展示了稳健且严格的制造和质量控制程序,这将帮助其他研究人员以常规且可靠的方式使用最新设备制造出质量尽可能高的玻璃微器件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/14cc/7502335/7a45e1c34787/fx1.jpg

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