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首页> 外文期刊>Microfluidics and nanofluidics >Glass capillary assembled microfluidic three-dimensional hydrodynamic focusing device for fluorescent particle detection
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Glass capillary assembled microfluidic three-dimensional hydrodynamic focusing device for fluorescent particle detection

机译:玻璃毛细管组装微流体三维流体动力学聚焦装置,用于荧光粒子检测

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摘要

A simple fabrication and reusable microfluidic three-dimensional hydrodynamic focus device is proposed in this study, which can be used for fluorescent particle counting and fluorescence intensity detection. The three-dimensional hydrodynamic focus microfluidic device offers numerous advantages over devices with a two-dimensional focus function. However, the fabrication process of most such devices is relatively complicated. In this study, a three-dimensional hydrodynamic focus device is fabricated by assembling commercially available square, round, and tapered glass capillaries. The inner diameter of the square capillary matches the outer diameter of the circular capillary to ensure that the centers of different capillaries are on the same axis. Thus, the device can provide a symmetric three-dimensional hydrodynamic focus flow. The proposed device can control the diameter of the focused flow by changing the flow rate of the sheath and sample flow. Standard fluorescent beads and fluorescent cells are passed through this device to accurately count the number of fluorescent particles and detect the intensity of fluorescence.
机译:本研究提出了一种简单的制造和可重复使用的微流体三维流体动力聚焦装置,可用于荧光粒子计数和荧光强度检测。三维流体动力学聚焦微流体装置提供了具有二维聚焦功能的设备上的许多优点。然而,大多数这样的装置的制造过程相对复杂。在该研究中,通过组装市售的正方形,圆形和锥形玻璃毛细管来制造三维流体动力学聚焦装置。方形毛细管的内径与圆形毛细管的外径匹配,以确保不同毛细管的中心位于同一轴上。因此,该设备可以提供对称的三维流体动力焦流量。所提出的装置可以通过改变护套的流速和样品流动来控制聚焦流的直径。通过该装置通过标准荧光珠和荧光细胞以精确地计算荧光粒子的数量并检测荧光的强度。

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  • 来源
    《Microfluidics and nanofluidics》 |2021年第5期|42.1-42.8|共8页
  • 作者

    Lin Yen-Heng; Chang Ching-Hui;

  • 作者单位

    Chang Gung Univ Grad Inst Biomed Engn Taoyuan 333 Taiwan|Chang Gung Mem Hosp Dept Otolaryngol Head & Neck Surg Taoyuan 333 Taiwan;

    Chang Gung Univ Grad Inst Biomed Engn Taoyuan 333 Taiwan;

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  • 正文语种 eng
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