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首页> 外文期刊>Microfluidics and nanofluidics >Implementation of a nanochannel open/close valve into a glass nanofluidic device
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Implementation of a nanochannel open/close valve into a glass nanofluidic device

机译:将纳米通道开/闭瓣膜的实施方式进入玻璃纳米流体装置

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摘要

In micro-anofluidics, channel open/close valves are fundamental to integrating fluid operations and realizing highly integrated analytical devices. Recently, we proposed a nanochannel open/close valve utilizing glass deformation and verified the principle of opening and closing nanochannels. Glass deformation sufficient to close the valve was achieved using a 45-um-thick glass sheet as a material of a nanofluidic device. However, since the device incorporates the thin glass sheet and is not robust enough to be used for repeated analyses, fluid operations utilizing the valve have not been verified sufficiently. Thus, in the present study, we fabricated a nanofluidic device implemented with a nanochannel open/close valve using rigid glass substrates of thicknesses on the order of 100 μm, and verified fluid operations utilizing the valve. On a small part of the substrate, we designed and fabricated a 30-μm-thick deformation section for the valve. The open/close operation and the performance of the valve were verified. The leakage of the valve was measured to be 2%, the response time was 0.9 s, and the number of repetitions was over 100,000. By utilizing the fabricated valve, we demonstrated fluid operations with femtoliter to picoliter volumes. Flow-switching within approximately 1 s and a flow control rate in the 63-1341 fL/s range was achieved. In addition, the fluid resistance of the valve was investigated both experimentally and numerically to establish a guideline for designing the valve. The valve developed and the design guidelines obtained will greatly contribute to integrated nanofluidic analytical devices.
机译:在微/纳米流体中,通道开/闭阀是整合流体操作并实现高度集成的分析装置的基础。最近,我们提出了一种利用玻璃变形的纳米通道开/闭阀,并验证了开近纳米的原理。使用45微米厚的玻璃板作为纳米流体装置的材料实现足以关闭阀的玻璃变形。然而,由于该装置包含薄玻璃板并且不足以用于重复分析的鲁棒,因此利用阀门的流体操作尚未得到充分验证。因此,在本研究中,我们制造了使用厚度的厚度的刚性玻璃基板的纳米通道开/闭阀实现的纳米流体装置,并验证了利用阀门的流体操作。在基板的一小部分上,我们为阀门设计并制造了30微米厚的变形部分。验证了开放式/关闭操作和阀门的性能。测量阀的泄漏为2%,响应时间为0.9秒,重复次数超过100,000。通过利用制造的阀,我们将流体操作与Femtoliter展示给Picoliter体积。实现在大约1秒内的流动切换和63-1341 FL / S范围内的流量控制率。另外,实验和数值研究阀的流体阻力以建立设计阀门的指导。所产生的阀门和所获得的设计指南将极大地促进纳米流体分析装置。

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  • 来源
    《Microfluidics and nanofluidics》 |2020年第10期|78.1-78.11|共11页
  • 作者单位

    Department of Applied Chemistry School of Engineering The University of Tokyo 7-3-1 Hongo Bunkyo Tokyo 113-8656 Japan;

    Department of System Design Engineering Faculty of Science and Technology Keio University 3-14-1 Hiyoshi Kohoku Yokohama Kanagawa 223-8522 Japan;

    Collaborative Research Organization for Micro and Nano Multifunctional Devices The University of Tokyo 7-3-1 Hongo Bunkyo Tokyo 113-8656 Japan;

    Collaborative Research Organization for Micro and Nano Multifunctional Devices The University of Tokyo 7-3-1 Hongo Bunkyo Tokyo 113-8656 Japan Institute of Nanoengineering and Microsystems/Department of Power Mechanical Engineering National Tsing Hua University No. 101 Section 2 Kuang-Fu Road Hsinchu 30013 Taiwan R.O.C;

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

    Nanofluidics; Nanochannel; Valve; Femtoliter; Fluidic operation;

    机译:纳米流体;纳米通道;阀门;femtoliter;流体运转;

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