School of Physics & Technology, Key Laboratory of Artificial Micro/Nano Structure of Ministry of Education, Wuhan University, Wuhan 430072, China.
Lab Chip. 2017 Nov 21;17(23):4025-4030. doi: 10.1039/c7lc01016h.
Real-time detection of phosphate has significant meaning in marine environmental monitoring and forecasting the occurrence of harmful algal blooms. Conventional monitoring instruments are dependent on artificial sampling and laboratory analysis. They have various shortcomings for real-time applications because of the large equipment size and high production cost, with low target selectivity and the requirement of time-consuming procedures to obtain the detection results. We propose an optofluidic miniaturized analysis chip combined with micro-resonators to achieve real-time phosphate detection. The quantitative water-soluble components are controlled by the flow rate of the phosphate solution, chromogenic agent A (ascorbic acid solution) and chromogenic agent B (12% ammonium molybdate solution, 80% concentrated sulfuric acid and 8% antimony potassium tartrate solution with a volume ratio of 80 : 18 : 2). Subsequently, an on-chip Fabry-Pérot microcavity is formed with a pair of aligned coated fiber facets. With the help of optical feedback, the absorption of phosphate can be enhanced, which can avoid the disadvantages of the macroscale absorption cells in traditional instruments. It can also overcome the difficulties of traditional instruments in terms of size, parallel processing of numerous samples and real-time monitoring, etc. The absorption cell length is shortened to 300 μm with a detection limit of 0.1 μmol L. The time required for detection is shortened from 20 min to 6 seconds. Predictably, microsensors based on optofluidic technology will have potential in the field of marine environmental monitoring.
实时检测磷酸盐在海洋环境监测和预测有害藻类水华的发生方面具有重要意义。传统的监测仪器依赖于人工采样和实验室分析。由于设备尺寸大、生产成本高,它们在实时应用方面存在各种缺点,目标选择性低,并且需要耗时的程序才能获得检测结果。我们提出了一种结合微谐振器的光流迷你分析芯片,用于实现实时磷酸盐检测。定量水溶性成分由磷酸盐溶液、显色剂 A(抗坏血酸溶液)和显色剂 B(12%钼酸铵溶液、80%浓硫酸和 8%酒石酸锑钾溶液,体积比为 80:18:2)的流速控制。随后,一对对准的涂覆光纤面形成了一个片上 Fabry-Pérot 微腔。借助光学反馈,可以增强磷酸盐的吸收,从而避免传统仪器中大规模吸收池的缺点。它还可以克服传统仪器在尺寸、大量样品的并行处理和实时监测等方面的困难。吸收池长度缩短至 300μm,检测限为 0.1μmol L。检测所需的时间从 20 分钟缩短到 6 秒。可以预见,基于光流技术的微传感器将在海洋环境监测领域具有潜力。