Yi Duo, Su Man, Tan Xiaoling, Geng Youfu, Li Xuejin, Wang Lina, Hong Xueming
Opt Express. 2021 May 10;29(10):15434-15442. doi: 10.1364/OE.419705.
In this paper, we propose a four-wave mixing-based photonic crystal fiber (PCF) microfluid sensor, and two U-shape microslits fabricated by a femtosecond laser are embedded into the sensor for real-time microfluid measurement. Theoretical and experimental results prove that the signal wavelength is sensitive to both the refractive index (RI) and the material dispersion property of the liquid sample filled into the air channels. For different aqueous target samples at low concentrations, the responses of signal wavelength are consistent with each other. The obtained RI sensitivity is approximately 881.36 nm/RIU, and the sensing resolution is around 1.6 × 10 RIU. The proposed sensor also shows a better figure of merit (FOM) as high as 313.65 RIU when compared with the fiber SPR sensors. Besides, the signal wavelengths present different responses with the increasing aqueous concentration due to the separated dispersion characteristics of the filled liquid samples, which can be potentially applied for the discrimination of liquid samples with a well-designed wavelength-coded sensor array in the future.
在本文中,我们提出了一种基于四波混频的光子晶体光纤(PCF)微流体传感器,并将通过飞秒激光制造的两个U形微狭缝嵌入到该传感器中,用于实时微流体测量。理论和实验结果证明,信号波长对填充到空气通道中的液体样品的折射率(RI)和材料色散特性均敏感。对于不同的低浓度水性目标样品,信号波长的响应彼此一致。所获得的RI灵敏度约为881.36 nm/RIU,传感分辨率约为1.6×10 RIU。与光纤SPR传感器相比,所提出的传感器还具有高达313.65 RIU的优良品质因数(FOM)。此外,由于填充液体样品的分散特性不同,信号波长随水性浓度的增加呈现出不同的响应,这在未来通过精心设计的波长编码传感器阵列有可能应用于液体样品的鉴别。