Singh Ankit Kumar, Agrahari Shreanshi, Gautam Ravindra Kumar, Tiwari Ida
Department of Chemistry (Centre of Advanced Study), Institute of Science, Banaras Hindu University, Varanasi, 221005, India.
Environ Sci Pollut Res Int. 2024 Dec;31(60):67339-67354. doi: 10.1007/s11356-023-30373-3. Epub 2023 Oct 14.
Herein, we demonstrate the preparation and application of NiCoO decorated over a g-CN-based novel nanocomposite (NiCoO@g-CN). The prepared material was well characterized through several physicochemical techniques, including FT-IR, XRD, SEM, and TEM. The electrochemical characterizations via electrochemical impedance spectroscopy show the low electron transfer resistance of NiCoO@g-CN owing to the successful incorporation of NiCoO nanoparticles on the sheets of g-CN. NiCoO@g-CN nanocomposite was employed in the fabrication of a screen-printed carbon electrode-based innovative electrochemical sensing platform and the adsorptive removal of a food dye, i.e., fast green FCF dye (FGD). The electrochemical oxidation of FGD at the developed NiCoO@g-CN nanocomposite modified screen-printed carbon electrode (NiCoO@g-CN/SPCE) was observed at an oxidation potential of 0.65 V. A wide dual calibration range for electrochemical determination of FGD was successfully established at the prepared sensing platform, showing an excellent LOD of 0.13 µM and sensitivity of 0.6912 µA.µM.cm through differential pulse voltammetry. Further, adsorbent dose, pH, contact time, and temperature were optimized to study the adsorption phenomena. The adsorption thermodynamics, isotherm, and kinetics were also investigated for efficient removal of FGD at NiCoO@g-CN-based adsorbents. The adsorption phenomenon of FGD on NiCoO@g-CN was best fitted (R = 0.99) with the Langmuir and Henry model, and the corresponding value of Langmuir adsorption efficiency (q) was 3.72 mg/g for the removal of FGD. The reaction kinetics for adsorption phenomenon were observed to be pseudo-second order. The sensitive analysis of FGD in a real sample was also studied.
在此,我们展示了负载在基于g-CN的新型纳米复合材料(NiCoO@g-CN)上的NiCoO的制备及应用。通过包括傅里叶变换红外光谱(FT-IR)、X射线衍射(XRD)、扫描电子显微镜(SEM)和透射电子显微镜(TEM)在内的多种物理化学技术对所制备的材料进行了充分表征。通过电化学阻抗谱进行的电化学表征表明,由于NiCoO纳米颗粒成功负载在g-CN片层上,NiCoO@g-CN具有较低的电子转移电阻。NiCoO@g-CN纳米复合材料被用于构建基于丝网印刷碳电极的创新型电化学传感平台,并用于吸附去除一种食用色素,即亮绿FCF染料(FGD)。在开发的NiCoO@g-CN纳米复合材料修饰的丝网印刷碳电极(NiCoO@g-CN/SPCE)上,观察到FGD在0.65 V的氧化电位下发生电化学氧化。在所制备的传感平台上成功建立了用于电化学测定FGD的宽双校准范围,通过差分脉冲伏安法显示出优异的检测限为0.13 μM,灵敏度为0.6912 μA·μM⁻¹·cm⁻²。此外,对吸附剂用量、pH值、接触时间和温度进行了优化以研究吸附现象。还研究了基于NiCoO@g-CN的吸附剂对FGD的吸附热力学、等温线和动力学,以实现FGD的高效去除。FGD在NiCoO@g-CN上的吸附现象与朗缪尔模型和亨利模型拟合最佳(R = 0.99),去除FGD时朗缪尔吸附效率(q)的相应值为3.72 mg/g。观察到吸附现象的反应动力学为拟二级反应。还研究了实际样品中FGD的灵敏分析。