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Research on forming and application of U-form glass micro-nanofluidic chip with long nanochannels

机译:具有长纳米通道的U型玻璃微纳流控芯片的形成与应用研究

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摘要

The forming process of U-form glass micro-nanofluidic chip with long nanochannels is presented in this paper, in which the fabrication of channels and the assembly of plates are included. The micro-nanofluidic chip is composed of two glass plates in which there are microchannels and nanochannels, respectively. This chip can be used for trace sample enrichment, molecule filtration, and sample separation, etc. In fabrication process, the two-step photolithograph on one wafer is often required in early papers, as nano and micro structure designed in one plate have different depths. In this paper, the channels in micro-nanofluidic chip are designed in two glass plates instead of in one wafer. The nanochannels and micro-channels are, respectively, formed on plates using wet etching and two-step photolithograph on one wafer is not required. Since the channels are formed, the upper plate and the bottom plate are assembled together by alignment, preconnection and thermal bonding orderly. Firstly these plates are aligned with the cross-marks on an inverted microscope. The aqueous film between plates is controlled to decrease the static friction force for accurate adjustment. Then the adhesion strength of connection is enhanced with semi-dry status for limiting movement from slight inclining and shaking. At last, the bottom plate and the upper one are irreversibly linked together with thermal bonding. The heating period and max temperature of thermal bonding are optimized to eliminate thermal stress gradient and the sizernshrinking. With the micro-nanofluidic chip, the 1 μM fluorescein isothiocyanate in 10 mM PBS buffer is concentrated successfully. The sample concentrating factor of light intensity varies from 2.2 to 8.4 with applied voltages between 300 and 2,000 V. The switch effect and the instability effect in concentrating process are described and analyzed too.
机译:本文介绍了具有长纳米通道的U形玻璃微纳米流体芯片的形成过程,其中包括通道的制造和板的组装。微纳米流体芯片由两个玻璃板组成,其中分别具有微通道和纳米通道。该芯片可用于痕量样品富集,分子过滤和样品分离等。在制造过程中,早期论文中经常需要在一个晶片上进行两步光刻,因为在一个板上设计的纳米和微米结构具有不同的深度。在本文中,微纳米流体芯片中的通道被设计在两个玻璃板中而不是一个晶片中。使用湿法蚀刻分别在板上​​形成纳米通道和微通道,并且不需要在一个晶片上进行两步光刻。由于形成了通道,因此通过对准,预连接和热粘合将上板和底板组装在一起。首先,将这些板与倒置显微镜上的十字标记对齐。控制板之间的水膜以减小静摩擦力以进行精确调节。然后,以半干燥状态增强连接的附着强度,以限制轻微倾斜和摇晃的运动。最后,底板和上板通过热粘合不可逆地连接在一起。优化了热粘合的加热时间和最高温度,以消除热应力梯度和尺寸收缩。使用微纳米流体芯片,可成功浓缩10 mM PBS缓冲液中的1μM异硫氰酸荧光素。在300至2,000 V之间施加电压时,样品的光强度集中系数在2.2至8.4之间变化。还描述和分析了集中过程中的开关效应和不稳定性效应。

著录项

  • 来源
    《Microfluidics and nanofluidics》 |2009年第3期|423-429|共7页
  • 作者单位

    Key Laboratory for Micro/Nano Technology and System of Liaoning Province, Dalian University of Technology, 116024 Dalian, Liaoning, China;

    Key Laboratory for Micro/Nano Technology and System of Liaoning Province, Dalian University of Technology, 116024 Dalian, Liaoning, China;

    Key Laboratory for Micro/Nano Technology and System of Liaoning Province, Dalian University of Technology, 116024 Dalian, Liaoning, China;

    Key Laboratory for Micro/Nano Technology and System of Liaoning Province, Dalian University of Technology, 116024 Dalian, Liaoning, China;

    Key Laboratory for Micro/Nano Technology and System of Liaoning Province, Dalian University of Technology, 116024 Dalian, Liaoning, China;

    Key Laboratory for Micro/Nano Technology and System of Liaoning Province, Dalian University of Technology, 116024 Dalian, Liaoning, China;

    Key Laboratory for Micro/Nano Technology and System of Liaoning Province, Dalian University of Technology, 116024 Dalian, Liaoning, China;

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

    micro-nanofluidic chip; glass wet etching; thermal bonding; enrichment and depletion effect;

    机译:微纳米流体芯片玻璃湿法蚀刻;热粘合;富集和耗尽效应;
  • 入库时间 2022-08-17 13:45:56

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