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Novel design of a passive microfluidic mixer for biochemical reactions and biosensing

机译:用于生化反应和生物传感的无源微流体混合器的新颖设计

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摘要

The next step in miniaturization of analytical devices involves the use of MEMS and Lab-on-a-Chip applications, where many biological or chemical reactions are carried out on the device in real time. Since detection mechanisms occur almost immediately after the reactions, inefficient mixing of reagents could cause a decrease in sensing capability, especially on micro- and nano-scaled devices. Thus a microfluidic mixer has become a crucial component in these applications. Here we propose a new design of a passive microfluidic mixer that utilizes the theories of chaotic advection to enhance mixing. The micro-channels for the mixer have dimensions with width ranging from 10?m to 40?m, depth 40?m, and a total length of 280?m. First the designs are simulated using CFD-ACE+ for computational analysis. After the device geometry has been decided, the actual devices are fabricated using traditional UV photolithography on silicon and bonded with pyrex glass by anodic bonding. To test the actual device mixing efficiency, we used a fluorescent dye rhodamine B solution to mix with DI water and put the devices under fluorescent microscope observations for real-time analysis. Images of fluorescent light intensities are taken at different flow rates during the analysis and are later used to study the experimental results calculated using a published mixing efficiency formula for comparison.
机译:分析设备小型化的下一步涉及使用MEMS和片上实验室应用,其中在设备上实时进行许多生物或化学反应。由于检测机制几乎是在反应后立即发生的,因此试剂的无效混合可能会导致传感能力下降,尤其是在微米和纳米级设备上。因此,微流体混合器已经成为这些应用中的关键组件。在这里,我们提出了一种新的无源微流混合器设计,它利用混沌对流理论来增强混合。混合器的微通道的尺寸为:宽度为10?m至40?m,深度为40?m,总长度为280?m。首先,使用CFD-ACE +对设计进行仿真以进行计算分析。确定了器件的几何形状后,将使用传统的UV光刻技术在硅上制造实际的器件,然后通过阳极键合与耐热玻璃进行键合。为了测试实际的设备混合效率,我们使用了荧光染料若丹明B溶液与去离子水混合,并将设备置于荧光显微镜下进行实时分析。在分析过程中以不同的流速拍摄荧光强度的图像,然后将其用于研究使用已发布的混合效率公式进行比较得出的实验结果。

著录项

  • 作者

    Yee Yao-Chung;

  • 作者单位
  • 年度 2009
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  • 原文格式 PDF
  • 正文语种 en_US
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