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Accurate and reliable nitrate detection is essential for water quality monitoring, especially in the face of rising contaminant loads from human activities. Electrochemical sensors with copper electrodes present a promising alternative to conventional nitrate detection methods. However, their broader application is limited by electrode passivation, interference from coexisting species and the requirement for solution deaeration. This study presents a simple in-situ activation strategy that prevents passivation, removes the deaeration requirement and ensures stable sensor performance. A commercial copper electrode was used for nitrate detection via linear sweep voltammetry. A multi-factor interaction approach was employed to optimize four experimental factors based on a D-optimal response surface methodology (RSM) model, providing a deeper understanding of the synergistic effects among variables. Under optimized conditions, the sensor achieved a sensitivity of 2.86 µA/µM and a limit of detection (LOD) of 22.84 µM within a linear range of 100–800 µM. In addition, the sensor showed excellent reproducibility (RSD = 1.26 ± 0.33%) and maintained signal stability for 15 consecutive measurements at two different concentrations. Interference studies confirmed negligible effects from most ions, with nitrite enhancing the response via oxidation. Calculations showed a matrix effect (M.E.) of 10.61% and 6.82%, respectively for tap and river water with recoveries of 96–109%. Furthermore, Chow tests revealed no significant matrix effects. The sensor measurements were consistent with the spectrophotometric method, with an error of 3.35%. Collectively, these findings demonstrate the robustness, reliability, and practicality of this copper-based sensor for routine nitrate monitoring in environmental and drinking water systems. • In-situ activation prevents copper electrode passivation without deaeration. • D-optimal RSM enables efficient multi-factor optimization of nitrate sensor performance. • Sensor shows high nitrate selectivity and reproducibility. • Validation in real matrices with Chow tests, recovery calculation and comparison with spectrophotometric method.
Jahan et al. (Mon,) studied this question.