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High-Sensitivity Temperature-Independent Silicon Photonic Microfluidic Biosensors.

机译:高灵敏度,温度无关的硅光子微流体生物传感器。

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摘要

Optical biosensors that can precisely quantify the presence of specific molecular species in real time without the need for labeling have seen increased use in the drug discovery industry and molecular biology in general. Of the many possible optical biosensors, the TM mode Si biosensor is shown to be very attractive in the sensing application because of large field amplitude on the surface and cost effective CMOS VLSI fabrication.;Noise is the most fundamental factor that limits the performance of sensors in development of high-sensitivity biosensors, and noise reduction techniques require precise studies and analysis. One such example stems from thermal fluctuations. Generally SOI biosensors are vulnerable to ambient temperature fluctuations because of large thermo-optic coefficient of silicon (∼2x10 -4 RIU/K), typically requiring another reference ring and readout sequence to compensate temperature induced noise. To address this problem, we designed sensors with a novel TM-mode shallow-ridge waveguide that provides both large surface amplitude for bulk and surface sensing. With proper design, this also provides large optical confinement in the aqueous cladding that renders the device athermal using the negative thermo-optic coefficient of water (~ --1x10-4RIU/K), demonstrating cancellation of thermo-optic effects for aqueous solution operation near 300K.;Additional limitations resulting from mechanical actuator fluctuations, stability of tunable lasers, and large 1/f noise of lasers and sensor electronics can limit biosensor performance. Here we also present a simple harmonic feedback readout technique that obviates the need for spectrometers and tunable lasers. This feedback technique reduces the impact of 1/f noise to enable high-sensitivity, and a DSP lock-in with 256 kHz sampling rate can provide down to micros time scale monitoring for fast transitions in biomolecular concentration with potential for small volume and low cost.;In this dissertation, a novel high-sensitivity, athermal biosensor on a TM-mode SOI resonator was designed, fabricated, and evaluated. High-performance biosensing for bulk and surface detection limits of 1x10-7 RIU and 24 fg/mm2 was demonstrated.
机译:可以实时准确地定量特定分子种类的存在而无需标记的光学生物传感器已经在药物发现行业和分子生物学中得到越来越广泛的使用。在许多可能的光学生物传感器中,由于表面上的大场振幅和具有成本效益的CMOS VLSI制造,TM模式Si生物传感器在传感应用中显示出极大的吸引力。噪声是限制传感器性能的最基本因素在开发高灵敏度生物传感器方面,降噪技术需要精确的研究和分析。一个这样的例子源于热波动。通常,由于硅的热光系数较大(〜2x10 -4 RIU / K),SOI生物传感器容易受到环境温度波动的影响,通常需要另一个参考环和读出序列来补偿温度引起的噪声。为了解决这个问题,我们设计了带有新型TM模式浅脊波导的传感器,该波导既提供大的表面振幅,又可以进行体感和表面感测。通过适当的设计,这还可以在水性覆层中提供较大的光学限制,从而使用负的水热光学系数(〜-1x10-4RIU / K)使设备处于非热状态,从而证明可以消除水溶液操作中的热光学效应接近300K 。;由于机械执行器波动,可调谐激光器的稳定性以及激光器和传感器电子器件的1 / f噪声大而导致的其他限制可能会限制生物传感器的性能。在这里,我们还提出了一种简单的谐波反馈读出技术,从而消除了对光谱仪和可调激光器的需求。这种反馈技术减少了1 / f噪声的影响,从而实现了高灵敏度,而256 kHz采样率的DSP锁定可提供微秒级的时间尺度监控,以实现生物分子浓度的快速转变,具有小体积和低成本的潜力本文设计,制作并评估了一种新型的TM模式SOI谐振器上的高灵敏度,无热生物传感器。演示了针对体积和表面检测极限为1x10-7 RIU和24 fg / mm2的高性能生物传感。

著录项

  • 作者

    Kim, Kangbaek.;

  • 作者单位

    Lehigh University.;

  • 授予单位 Lehigh University.;
  • 学科 Physics Optics.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 160 p.
  • 总页数 160
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:43:16

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