National Oceanography Centre , Southampton SO14 3ZH, United Kingdom.
Ocean and Earth Science, University of Southampton , Southampton SO14 3ZH, United Kingdom.
Environ Sci Technol. 2017 Sep 5;51(17):9989-9995. doi: 10.1021/acs.est.7b01581. Epub 2017 Aug 24.
Here, we present a new in situ microfluidic phosphate sensor that features an improved "phosphate blue" assay which includes polyvinylpyrrolidone in place of traditional surfactants-improving sensitivity and reducing temperature effects. The sensor features greater power economy and analytical performance relative to commercially available alternatives, with a mean power consumption of 1.8 W, a detection limit of 40 nM, a dynamic range of 0.14-10 μM, and an infield accuracy of 4 ± 4.5%. During field testing, the sensor was continuously deployed for 9 weeks in a chalk stream, revealing complex relations between flow rates and phosphate concentration that suggest changing dominance in phosphate sources. A distinct diel phosphorus signal was observed under low flow conditions, highlighting the ability of the sensor to decouple geochemical and biotic effects on phosphate dynamics in fluvial environments. This paper highlights the importance of high resolution in situ sensors in addressing the current gross under-sampling of aquatic environments.
在这里,我们提出了一种新的原位微流控磷酸盐传感器,其特点是改进的“磷酸盐蓝”测定法,其中包括聚乙烯吡咯烷酮代替传统表面活性剂,从而提高了灵敏度并降低了温度的影响。与市售的替代产品相比,该传感器具有更高的功率效率和分析性能,平均功耗为 1.8 W,检测限为 40 nM,动态范围为 0.14-10 μM,场内精度为 4 ± 4.5%。在现场测试中,该传感器连续在白垩溪流中部署了 9 周,揭示了流速和磷酸盐浓度之间的复杂关系,表明磷酸盐来源的主导地位正在发生变化。在低流量条件下观察到明显的昼夜磷信号,突出了该传感器在分离河流环境中磷酸盐动态的地球化学和生物效应的能力。本文强调了高分辨率原位传感器在解决当前对水生环境严重采样不足的重要性。