Kumar S K Naveen, Aliyana Akshaya Kumar, Baburaj Aiswarya, Adetunji Michael, Fernandez Renny Edwin
IEEE Trans Nanobioscience. 2023 Jan;22(1):121-127. doi: 10.1109/TNB.2022.3166388. Epub 2022 Dec 29.
This work reports on the development of an impedance sensor-based real-time-field specific system to monitor aqueous Ammonium (NH4+). The sensing element was fabricated by modifying screen-printed interdigitated electrodes (IDEs) with a hybrid nanocomposite of Multi-Wall Carbon Nanotube (MWCNT) with Zinc Oxide (ZnO) nanocrystals. The NH4+ of the water was monitored, and it exhibited a sensitivity of 67.13 Ω /mM with average correlation coefficients of 0.80. The impedance magnitude ( Ω ) of the NH4+ sensor was unaffected by the presence of Fe2+, Ni2+, K+ and P+ interfering cations. The developed sensor was interfaced with an IoT-enabled NodeMCU microcontroller, enabling a direct method for continuous monitoring of NH4+ concentrations. This integrated system is interconnected to the field-deployed sensor nodes, which provide real-time NH4+ levels to the remote user through web applications.
这项工作报道了一种基于阻抗传感器的实时现场特定系统的开发,用于监测水溶液中的铵(NH4+)。传感元件是通过用多壁碳纳米管(MWCNT)与氧化锌(ZnO)纳米晶体的混合纳米复合材料修饰丝网印刷叉指电极(IDEs)制成的。对水中的NH4+进行了监测,其灵敏度为67.13Ω/mM,平均相关系数为0.80。NH4+传感器的阻抗幅值(Ω)不受Fe2+、Ni2+、K+和P+干扰阳离子存在的影响。所开发的传感器与支持物联网的NodeMCU微控制器相连,实现了一种直接连续监测NH4+浓度的方法。这个集成系统与现场部署的传感器节点互连,通过网络应用程序向远程用户提供实时NH4+水平。