Lou Jingyi, Wang Yipei, Tong Limin
College of Science, Zhejiang University of Science and Technology, Hangzhou 310023, China.
State Key Lab of Modern Optical Instrumentation, Zhejiang University, Hangzhou 310027, China.
Sensors (Basel). 2014 Mar 25;14(4):5823-44. doi: 10.3390/s140405823.
With diameter close to or below the wavelength of guided light and high index contrast between the fiber core and the surrounding, an optical microfiber shows a variety of interesting waveguiding properties, including widely tailorable optical confinement, evanescent fields and waveguide dispersion. Among various microfiber applications, optical sensing has been attracting increasing research interest due to its possibilities of realizing miniaturized fiber optic sensors with small footprint, high sensitivity, fast response, high flexibility and low optical power consumption. Here we review recent progress in microfiber optical sensors regarding their fabrication, waveguide properties and sensing applications. Typical microfiber-based sensing structures, including biconical tapers, optical gratings, circular cavities, Mach-Zehnder interferometers and functionally coated/doped microfibers, are summarized. Categorized by sensing structures, microfiber optical sensors for refractive index, concentration, temperature, humidity, strain and current measurement in gas or liquid environments are reviewed. Finally, we conclude with an outlook for challenges and opportunities of microfiber optical sensors.
由于直径接近或低于导波光的波长,且光纤纤芯与周围环境之间具有高折射率对比度,光学微纤维展现出各种有趣的波导特性,包括可广泛定制的光学限制、倏逝场和波导色散。在各种微纤维应用中,光学传感因其有可能实现占地面积小、灵敏度高、响应快、灵活性高和光功耗低的小型化光纤传感器而吸引了越来越多的研究兴趣。在此,我们回顾了微纤维光学传感器在制造、波导特性和传感应用方面的最新进展。总结了典型的基于微纤维的传感结构,包括双锥光纤、光栅、圆形腔、马赫曾德尔干涉仪和功能涂层/掺杂微纤维。按传感结构分类,综述了用于气体或液体环境中折射率、浓度、温度、湿度、应变和电流测量的微纤维光学传感器。最后,我们对微纤维光学传感器面临的挑战和机遇进行了展望。