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A Fluidic Interface with High Flow Uniformity for Reusable Large Area Resonant Biosensors

机译:具有可重复使用的大面积谐振生物传感器的高流量均匀性的流体接口。

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摘要

Resonant biosensors are known for their high accuracy and high level of miniaturization. However, their fabrication costs prevent them from being used as disposable sensors and their effective commercial success will depend on their ability to be reused repeatedly. Accordingly, all the parts of the sensor in contact with the fluid need to tolerate the regenerative process which uses different chemicals (H3PO4, H2SO4 based baths) without degrading the characteristics of the sensor. In this paper, we propose a fluidic interface that can meet these requirements, and control the liquid flow uniformity at the surface of the vibrating area. We study different inlet and outlet channel configurations, estimating their performance using numerical simulations based on finite element method (FEM). The interfaces were fabricated using wet chemical etching on Si, which has all the desirable characteristics for a reusable biosensor circuit. Using a glass cover, we could observe the circulation of liquid near the active surface, and by using micro-particle image velocimetry (μPIV) on large surface area we could verify experimentally the effectiveness of the different designs and compare with simulation results.
机译:谐振生物传感器以其高精度和高水平的微型化而闻名。但是,它们的制造成本使它们无法用作一次性传感器,其有效的商业成功将取决于其重复使用的能力。因此,传感器中与流体接触的所有部分都需要承受使用不同化学药品(H3PO4,H2SO4基镀液)的再生过程,而不会降低传感器的性能。在本文中,我们提出了一种可以满足这些要求的流体界面,并控制振动区域表面的液体流动均匀性。我们研究了不同的入口和出口通道配置,并使用基于有限元方法(FEM)的数值模拟来估算其性能。界面是通过在Si上进行湿法化学蚀刻制成的,该界面具有可重复使用的生物传感器电路所需的所有特性。使用玻璃盖,我们可以观察到活性表面附近的液体循环,并且通过在大表面积上使用微粒图像测速法(μPIV),我们可以实验验证不同设计的有效性并与仿真结果进行比较。

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