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首页> 外文期刊>Analytical Sciences >Real-time in-situ Simultaneous Monitoring of Dissolved Oxygen and Materials Movements at a Vicinity of Micrometers from an Aquatic Plant by Combining Deflection of a Probe Beam and Fluorescence Quenching
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Real-time in-situ Simultaneous Monitoring of Dissolved Oxygen and Materials Movements at a Vicinity of Micrometers from an Aquatic Plant by Combining Deflection of a Probe Beam and Fluorescence Quenching

机译:通过探针束偏转和荧光猝灭相结合的实时实时监测水生植物在千分尺附近的溶解氧和物质运动

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摘要

It is desirable to be able to monitor the intake or release of the components at different organs of aquatic plants in real time and in-situ. Here, we report a novel optical detection system that allows for real-time in-situ simultaneous monitoring of the dissolved oxygen and material movements at a vicinity of micrometers from the aquatic plant surface. A blue semiconductor diode-laser was used as the light source of both the probe beam and excitation light for fluorescence. The laser light reflected by a dichroic mirror was focused to a vicinity of the plant/water interface in a culture dish by an objective lens. The distance between the focused laser beam and the plant surface was adjusted by an X-Y-Z micro-stage. Deflection of the probe beam was detected by a position sensor, and fluorescence from the vicinity was monitored by a PMT. A commercial fluorescent DO sensor, which simultaneously monitored temperature, was immersed into the culture dish at about 1 cm away from the aquatic plants. A white-light LED was used to illuminate the aquatic plants in the dish in photosynthesis process. A Ru-complex (tris (2,2′-bipyridyl)ruthenium(II) chloride) was used as a fluorescent probe, and Egeria densa Planch. was used as a model aquatic plant. The DO-quenched fluorescence and material movement-induced deflection signals are compared at different distances from the aquatic plant surface. The results show that the optical detection system can monitor DO and the material movements at a vicinity of the aquatic plants not only much more sensitively, but also much more closely to real time than analytical methods that monitor concentration changes at a bulk solution.
机译:期望能够实时和原位监测水生植物的不同器官中组分的摄入或释放。在这里,我们报告了一种新颖的光学检测系统,该系统可以实时实时同时监测从水生植物表面到千分尺附近的溶解氧和物质运动。蓝色半导体二极管激光器用作探测光束和激发光的光源,用于荧光。由二向色镜反射的激光通过物镜聚焦到培养皿中的植物/水界面附近。聚焦的激光束与植物表面之间的距离通过X-Y-Z微型平台进行调节。通过位置传感器检测探测光束的偏转,并通过PMT监测来自附近的荧光。将同时监控温度的商用荧光DO传感器浸入距水生植物约1 cm处的培养皿中。在光合作用过程中,使用白光LED照亮了盘子中的水生植物。将Ru-络合物(三(2,2'-联吡啶基)氯化钌(II)氯化物)用作荧光探针,并使用Egeria densa Planch。被用作模型水生植物。在水生植物表面不同距离处比较了溶解氧猝灭的荧光和物质运动引起的偏转信号。结果表明,与监测散装溶液中浓度变化的分析方法相比,光学检测系统不仅可以更加灵敏地监视DO和水生植物附近的物质运动,而且还可以更加实时地监视。

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