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Basic structures of integrated photonic circuits for smart biosensor applications

机译:智能生物传感器应用中集成光子电路的基本结构

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The breadth of opportunities for applied technologies for optical sensors ranges from environmental and biochemical control, medical diagnostics to process regulation. Thus the specified usage of the optical sensor system requires a particular design and functionalization. Especially biochemical sensors incorporate electronic and photonic devices for the detection of harmful substances e.g. in drinking water. Here we present recent developments in the integration of a Si-based light emitting device (LED) [1-3, 8] into a photonic circuit for an optical waveguide-based biodetection system. This concept includes the design, fabrication and characterization of the dielectric high contrast waveguide as an important component, beside the LED, in the photonic system circuit. First approaches involve simulations of Si_3N_4/SiO_2-waveguides with the finite element method (FEM) and their fabrication by plasma enhanced chemical vapour deposition (PECVD), optical lithography and reactive ion etching (RIE). In addition, we characterized the deposited layers via ellipsometry and the etched structures by scanning electron microscopy (SEM). The obtained results establish a basis for optimized Si-based LED waveguide butt-coupling with adequate coupling efficiency, low attenuation loss and a high optical power throughput.
机译:光学传感器应用技术的机会范围广泛,从环境和生化控制,医学诊断到过程调节。因此,光学传感器系统的指定用途需要特定的设计和功能。尤其是生化传感器集成了电子和光子设备,可检测有害物质,例如在饮用水中。在这里,我们介绍了将基于Si的发光器件(LED)[1-3、8]集成到基于光波导的生物检测系统的光子电路中的最新进展。这个概念包括介电高对比度波导的设计,制造和表征,它是光子系统电路中除LED之外的重要组件。第一种方法涉及用有限元方法(FEM)模拟Si_3N_4 / SiO_2波导,并通过等离子增强化学气相沉积(PECVD),光学光刻和反应离子刻蚀(RIE)进行制造。此外,我们通过椭偏法表征了沉积层,并通过扫描电子显微镜(SEM)表征了蚀刻结构。获得的结果为优化的硅基LED波导对接耦合奠定了基础,该对接耦合具有足够的耦合效率,低衰减损耗和高光功率通过量。

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