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Microspectroscopy with terahertz bioMEMS

机译:与太赫兹生物镜头的微型光谱检查

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Biological applications require more and more compact, sensitive and reliable microsystems. We will present solutions in order to realize a "microspectroscopy" up to Terahertz frequencies of various biological entities (living cell, neurons, proteins...). We investigate these entities in liquid phase. In a recent work, we have demonstrated a solution to excite efficiently a single wire transmission line [1]. The propagation mode is similar to a surface plasmon and known as a Goubau-mode [2]. The wire we used is extremely thin compared to other recent solutions at terahertz frequencies. There are three orders of magnitude in the size of the wire used by K. Wang and D.M. Mittleman. Typically the wire's width is 1μm compared to the 900μm diameter metal wire in [3]. Moreover our solution is in a planar configuration which is more suitable for microfluidic applications. We benefit from the high confinement of the electromagnetic field around this very thin gold wire to optimize the sensitivity of these Terahertz BioMEMS. Microfluidic channels are placed below the strip in a perpendicular direction. We will first present some properties of the Planar Goubau-Line (PGL) [4] and the measurements results obtained with structures fabricated on glass and quartz substrates. In a last part resonant structures and Mach-Zehnder type interferometers will also be presented.
机译:生物应用需要越来越紧凑,灵敏,可靠的微系统。我们将呈现解决方案,以实现各种生物实体的太太频率(活细胞,神经元,蛋白质)的“微型光谱学”。我们在液相中调查这些实体。在最近的工作中,我们已经证明了一种能够有效兴奋的解决方案[1]。传播模式类似于表面等离子体并且称为绕布瑙模式[2]。与Terahertz频率的最近解决方案相比,我们使用的电线非常薄。 K. Wang和D.M的电线大小有三个数量级。 Mittleman。通常,与[3]中的900μm直径的金属线相比,电线的宽度为1μm。此外,我们的解决方案处于平面配置,更适合微流体应用。我们受益于这种非常薄的金线周围的电磁场的高限制,以优化这些太赫兹生物美的敏感性。微流体通道放置在条带下方的条带下方。我们将首先介绍平面绕骨线(PGL)[4]的一些性质,并通过玻璃和石英基板制造的结构获得的测量结果。在最后一部分共振结构和Mach-Zehnder型干涉仪中也将呈现。

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