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Fibre cladding interferometers and Bragg gratings made via plane by plane femtosecond laser inscription

机译:纤维包层干涉仪和通过平面飞机飞秒激光题字通过平面制作的布拉格光栅

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We present an extremely flexible femtosecond (fs) laser inscription method, applicable to the development of critical filtering and wave-guiding components in optical fibres. We inscribe in-fibre devices, such as cladding waveguides (CWGs), cladding Mach-Zehnder interferometers (MZIs) and embedded waveguide Bragg gratings (WBGs) using the same key femtosecond laser parameters, via an "inscribe and step", plane-by-plane (Pl-by-Pl) approach, applied as necessary on two orthogonal axes. This leads to femtosecond laser-inscribed cladding waveguides and ultra-compact MZIs that can support functional, integrated fibre Bragg gratings (FBGs); the unique sensing characteristics of the filters are maintained and provide complementary measurand information. The flexibility and control in waveguide/grating fabrication leads to sensing device customization, e.g. tailored bend sensing. We characterize CWG-WBG devices for their bend response, whereas the MZI-WBG is exposed to temperature and humidity excursions, confirming the unique sensor responses are maintained for this compact, compound sensor. The MZI exhibits response to external refractive index, a large, negative wavelength response with temperature and high sensitivity to humidity, whereas the MZI-located WBG displays a similar sensitivity to conventional core-based Bragg grating sensors to temperature and no response to relative humidity. We consider that this research is an important step in developing compact, smart optical fibre sensors.
机译:我们提出了一种极其灵活的FemtoSecond(FS)激光题字方法,适用于光纤中的临界过滤和波浪引导部件的开发。我们刻度介绍使用相同关键的Femtosecond激光参数的纤维纤维装置,例如包层波导(CWGS),包层Mach-Zehnder干涉仪(MZIS)和嵌入式波导布拉格光栅(WBG),通过“题列和步骤”,平面-plane(pl-by-pl)方法,在两个正交轴上根据需要应用。这导致飞秒激光刻有覆层波导和超紧凑的MZI,可以支持功能,集成光纤布拉格光栅(FBG);保持滤波器的独特感测特性并提供互补的测量信息。波导/光栅制造中的灵活性和控制导致感测装置定制,例如,量身定制的弯曲感应。我们将CWG-WBG器件置于弯曲响应,而MZI-WBG暴露于温度和湿度偏移,确认该紧凑型化合物传感器保持独特的传感器响应。 MZI表现出对外部折射率的反应,具有温度和高敏感性的大,负波长响应,而MZI的WBG对传统的基于核心的布拉格光栅传感器的温度和对相对湿度的反应显示相似的灵敏度。我们认为这项研究是开发紧凑,智能光纤传感器的重要一步。

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