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Microbial potentiometric sensor technology for real-time detecting and monitoring of toxic metals in aquatic matrices

机译:微生物电位传感器技术,用于水产矩阵中实时检测和监测有毒金属

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Considering that toxic metals can affect metabolic processes in microorganisms adversely, it can be hypothesized that these metals in water matrices would induce a decrease in metabolic activity of the biofilm microorganisms populating the surface of a sensing electrode, which could be registered as a change in the open-circuit potential (OCP) generated by the biofilm microorganisms. The goal of this study was to test this hypothesis and demonstrate the underlying principle that microbial potentiometric sensor (MPS) technology could be used for long-term and real-time monitoring and detection of rapid changes in metal concentrations in realistic aquatic environments. To address the goal, four objective were addressed: (1) a batch reactor with three graphite-based MPS electrodes was fabricated; (2) a set of single-ion solutions and one multiple ion solution were prepared reflecting realistic concentrations of metals found in electroplating wastewaters; (3) the responses of the MPS to the simultaneous presence of multiple toxic metal ions in a single solution were measured; and (4) the changes of the MPS signals to the presence of individual metal ion solutions were examined. While the hypothesis was validated, the study also revealed that the MPS was sufficiently sensitive to not only detect, but also quantify, toxic metal ion concentrations in aqueous solutions. The coefficients of determination, which were R 2 0.995, and responsiveness of 1 μmol/L for some toxic metal cations, strongly support the performance of MPS technology in the echelons of expensive analytical tools capable detecting and measuring trace elements.The magnitude of the MPS response was toxic metal specific. When the molar concertation normalizes the inhibition portion of the signal area, the assessed sensitivity order was: SeCdPbAgNi Zn. The study provides valuable information for enforcement agents, environmental professionals, and wastewater treatment operators, so toxic metal pollution and its detrimental impacts can be prevented and mitigated.
机译:考虑到有毒金属可以不利地影响微生物中的代谢过程,可以假设这些水基质中的这些金属将诱导填充感测电极表面的生物膜微生物的代谢活性降低,这可以注册为变化由生物膜微生物产生的开路电位(OCP)。本研究的目标是测试该假设,并展示微生物电位传感器(MPS)技术可用于长期和实时监测和检测现实水上环境中金属浓度快速变化的潜在原则。为了解决目标,解决了四个目标:(1)制造具有三个基于石墨的MPS电极的批量反应器; (2)制备一组单离子溶液和一种多离子溶液,反映了电镀废水中的逼真浓度的金属; (3)测量MPS在单个溶液中同时存在多种有毒金属离子的反应; (4)研究了MPS信号对存在单独的金属离子溶液的变化。虽然假设被验证,但研究还揭示了MPS对水溶液中不仅定量,而且量化的毒性金属离子浓度足够敏感。测定系数为R 2> 0.995,以及某些有毒金属阳离子的<1μmol/ L的反应性强烈支持MPS技术在能够检测和测量微量元素的昂贵分析工具的梯度中的性能。幅度MPS反应是有毒的金属特异性。当摩尔协调符合信号区域的抑制部分时,评估的灵敏度顺序是:Se> Cd> Pb> Ag> Ni> Zn。该研究为执法人员,环境专业人员和废水处理运营商提供了有价值的信息,因此可以防止和减轻毒性金属污染及其有害冲击。

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