传感应用的硅“光子分子”(会议报告)

H. L. Tsui, Osamah Alsalman, A. Alodhayb, H. Albrithen, D. Hagan, A. Knights, M. Halsall, I. Crowe
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摘要

硅光子学微环谐振器(MRR)和Mach-Zehnder波导传感器由于其高灵敏度、小占地面积和低成本的潜力,近年来备受关注。这种类型的传感器是基于检测由于波导器件周围环境中局部近场折射率(RI)的微小变化而引起的光学幅度/相位变化。寻求对更小的RI变化的灵敏度,例如基于蒸汽/气体的传感,这可以通过设计基于槽波导的器件来实现。此外,通过串联、并联或“嵌套”的耦合核磁共振排列,裁剪共振线形状以产生不对称(或类似法诺)模式,也证明了这种灵敏度增强的潜力。这种类型的装置可能会引起人们的兴趣,例如,在工业过程和环境监测中,对挥发性有机化合物(VOCs)的传感很重要。我们展示了许多这样的光子传感平台,结合了槽波导和既建立的和新的“光子分子”结构,使用标准的铸造制造工艺在绝缘体上的硅上制造。集成的TiN加热器提供热调谐能力,以操纵器件的光谱特性和器件对一系列VOCs的灵敏度;以苯、甲苯和二甲苯为例,采用定制的蒸汽输送系统进行了研究。通过器件建模和与传统单MRR器件的比较,确定了传感器的性能。在器件中添加功能层作为实现化学选择性的一种方法的潜力也将被讨论。
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Silicon 'photonic molecules' for sensing applications (Conference Presentation)
Silicon photonics micro-ring resonator (MRR) and Mach-Zehnder waveguide based sensors have attracted much attention in recent years because of their capacity for high sensitivity, small footprint and mass-scalable (low cost) potential. This type of sensor is based on the detection of changes in optical amplitude/phase due to small changes in local, near-field refractive index (RI) in the environment surrounding the waveguide device. Sensitivity to ever smaller changes in RI are sought, e.g. for vapour/gas based sensing, which may be realised by designing devices based around the slot waveguide. Furthermore, tailoring resonant line-shapes to generate asymmetric (or Fano-like) modes through series, parallel or ‘nested’ arrangements of coupled MRRs also demonstrates the potential for such sensitivity enhancement. This type of device is likely to be of interest, for example where sensing of volatile organic compounds (VOCs) is important, e.g. in industrial process and environmental monitoring. We demonstrate a number of such photonic sensing platforms, combining both the slot waveguide and both established and novel ‘photonic molecule’ structures, fabricated on silicon-on-insulator using standard foundry fabrication processes. Integrated TiN heaters provide the capacity for thermal tuning in order to manipulate the spectral characteristics of our devices and the sensitivity of the devices to a range of VOCs; benzene, toluene and xylene, are investigated as exemplars using a custom-made vapour delivery system. Sensor performance is established with the assistance of device modelling and comparison made with conventional single MRR devices as a reference. The potential of adding functional layers to the devices as a method for achieving chemical selectivity will also be discussed.
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