Zhou Wenchao, Wei Youlian, Wang Yue, Li Kaiwei, Yu Haiyang, Wu Yihui
Opt Express. 2021 Oct 25;29(22):36926-36935. doi: 10.1364/OE.441874.
This work proposes and demonstrates a novel interferometric sensor based on a zigzag-shaped tapered optical microfiber (Z-OMF) working at the dispersion turning point (DTP). The Z-OMF can be fabricated in a controllable manner through a modified fiber tapering method. Our study shows that the bending taper can transfer a portion of the fundamental HE mode to higher-order modes, and when the bending angle of the Z-OMF reaches 1.61°, high contrast interference fringes can be formed between the HE and the HE modes. More importantly, we find that by optimizing the diameter of the OMF, the group effective refractive index (RI) difference between HE and HE mode equals zero, and the refractive index sensing performance can be dramatically improved. To validate our proposed sensing mechanism, we experimentally demonstrate an ultrahigh sensitivity of 1.46×10 ± 0.09×10 nm/RIU. The proposed Z-OMF interferometer has the advantage of high sensitivity and low cost and shows excellent potential in chemical and biological detection.
这项工作提出并展示了一种基于锯齿形锥形光学微纤维(Z-OMF)的新型干涉传感器,该传感器工作在色散转折点(DTP)。Z-OMF可以通过改进的光纤拉锥方法以可控方式制造。我们的研究表明,弯曲拉锥可以将一部分基模HE转换为高阶模,当Z-OMF的弯曲角度达到1.61°时,在HE和HE模式之间可以形成高对比度干涉条纹。更重要的是,我们发现通过优化OMF的直径,HE和HE模式之间的群有效折射率(RI)差等于零,并且折射率传感性能可以得到显著改善。为了验证我们提出的传感机制,我们通过实验证明了1.46×10±0.09×10 nm/RIU的超高灵敏度。所提出的Z-OMF干涉仪具有高灵敏度和低成本的优点,并且在化学和生物检测中显示出优异的潜力。