School of Physics, Harbin Institute of Technology, Harbin 15001, China.
Department of Optoelectronics Science, Harbin Institute of Technology at Weihai, Weihai 264209, China.
Lab Chip. 2022 Sep 27;22(19):3734-3743. doi: 10.1039/d2lc00625a.
Real-time detection of the concentration of input fluid is essential for optofluidic sensing, especially in the case of biochips and organ-on-a-chip systems. In this paper, a microcantilever structure that enables temperature and liquid concentration sensing was fabricated on the tip of the optical fiber by femtosecond laser direct writing (two-photon polymerization, TPP) technology. An open Fabry-Pérot interferometer (F-P) structure was formed between the end of the optical fiber and the cantilever, so the sensor becomes quite sensitive to the localized temperature, concentration and refractive index of the target liquids. The reasonable size parameters of the cantilever were determined by structural stress analysis and interference spectrum analysis. By integrating the fiber sensor with a microfluidic chip, an on-chip optofluidic sensing platform is developed, which shows high sensitivities of the temperature (92.7 pm °C), concentration (0.3287 nm (g L)), and refractive index (1385.819 nm RIU). The reported optofluidic sensing platform demonstrates reasonably high stability and satisfactory sensing effect, holding great promise for applications in lab-on-a-chip systems.
实时检测输入流体的浓度对于光流感测至关重要,特别是在生物芯片和芯片上器官系统中。在本文中,通过飞秒激光直写(双光子聚合,TPP)技术在光纤尖端制造了一种能够进行温度和液体浓度感测的微悬臂梁结构。在光纤末端和悬臂梁之间形成了开式法布里-珀罗干涉仪(F-P)结构,因此传感器对目标液体的局部温度、浓度和折射率非常敏感。通过结构应力分析和干涉光谱分析确定了悬臂梁的合理尺寸参数。通过将光纤传感器与微流控芯片集成,开发了一种片上光流感测平台,该平台显示出对温度(92.7 pm °C)、浓度(0.3287nm(g/L))和折射率(1385.819nm RIU)的高灵敏度。所报道的光流感测平台表现出相当高的稳定性和令人满意的感测效果,在芯片上实验室系统的应用中具有很大的前景。