Institute for Electromagnetic Monitoring of the Environment (IREA), National Research Council (CNR), Naples, Italy.
Lab Chip. 2017 Jul 25;17(15):2631-2639. doi: 10.1039/c7lc00460e.
A multifunctional lab-on-a-chip platform for spectroscopic analysis of liquid samples based on an optofluidic jet waveguide is reported. The optofluidic detection scheme is achieved through the total internal reflection arising in a liquid jet of only 150 μm diameter, leading to highly efficient signal excitation and collection. This results in an optofluidic chip with an alignment-free spectroscopic detection scheme, which avoids any background from the sample container. This platform has been designed for multiwavelength fluorescence and Raman spectroscopy. The chip integrates a recirculation system that reduces the required sample volume. The evaluation of the device performance has been accomplished by means of fluorescence measurements performed on eosin Y in water solutions, achieving a limit of detection of 33 pM. The sensor has been applied in Raman spectroscopy of water-ethanol solutions, leading to a limit of detection of 0.18%. As additional application, analysis of riboflavin using fluorescence detection demonstrates the possibility of detecting this vitamin at the 560 pM level (0.21 ng l). Although measurements have been performed by means of a compact and low-cost spectrometer, in both cases the micro-jet optofluidic chip achieved similar performances if not better than high-end benchtop based laboratory equipment. This approach paves the way towards portable lab-on-a-chip devices for high sensitivity environmental and biochemical sensing, using optical spectroscopy.
本文报道了一种基于全内反射的光流体射流波导的多功能微流控芯片平台,用于液体样品的光谱分析。该光流体检测方案通过直径仅为 150μm 的液体射流实现全内反射,从而实现高效的信号激发和收集。这导致了一种具有无对准光谱检测方案的光流体芯片,该方案避免了任何来自样品容器的背景干扰。该平台专为多波长荧光和拉曼光谱设计。芯片集成了再循环系统,可减少所需的样品体积。通过在水溶液中的曙红 Y 进行荧光测量来评估设备性能,实现了 33 pM 的检测限。该传感器已应用于水-乙醇溶液的拉曼光谱,检测限为 0.18%。作为附加应用,使用荧光检测分析核黄素表明可以在 560 pM 水平(0.21ng l)检测到这种维生素。尽管通过紧凑型和低成本光谱仪进行了测量,但在这两种情况下,如果不是更好的话,微射流光流体芯片也能实现与高端台式实验室设备相当或更好的性能。这种方法为使用光学光谱的便携式微流控芯片设备在高灵敏度环境和生化传感方面开辟了道路。