Wei HUYurong ZHOUDonglei JIANGNanwei WANGSidi ZHANGNa ZHANGLifeng WANG
This study developed a electrochemical sensor based on gold nanoparticles (AuNPs) and multi-walled carbon nanotubes (MWCNTs) modified anodized aluminum oxide (AAO) membrane, coupled with a screen-printed carbon electrode (SPCE), for trace cadmium (Cd2+) and lead (Pb2+) ion detection in grain samples. The surface morphology and structure of the AuNPs-MWCNTs@AAO membrane were characterized by scanning electron microscopy (SEM), transmission electron microscopy (TEM), and X-ray diffraction (XRD). Electrochemical performance was assessed using cyclic voltammetry (CV) and electrochemical impedance spectroscopy (EIS). The optimized detection conditions were as follows: AAO membrane ultrasound treatment for 10 minutes, buffer solution at pH5.5, and stripping at −1.2 V for 180 s in the optimized buffer. Over the concentration range of 0.1~10.00 μg/L, the oxidation peak currents exhibited a strong linear correlation with concentration, with correlation coefficients (R2) of 0.9903 and 0.9993. The limits of detection (LOD) for Cd2+ and Pb2+ were 0.23 μg/L and 0.11 μg/L, respectively. The sensor demonstrated strong selectivity against common interfering metal ions, with current response variation not exceeding 5% even at 100-fold excess concentrations. The sensor exhibited high repeatability, reproducibility, and long-term stability, with relative standard deviations (RSD) of 2.5% and 2.3% for the oxidation-reduction peak currents. The sensor is easy to prepare and provides reliable, effective performance for detecting trace heavy metals in grain samples.
Jianying QuXueping DuShiping KangTongfang Lou
Khaisa AvchukirYrysgul BakytkarimZhazira MukatayevaYerbol TileuberdiNurgul ShadinDilyara YenbekovaGulmira Rakhymbay
Jinquan LiuXiaoxiao HeKemin WangYonghong WangGenping YanYin-Fei Mao
李超 Li Chao郭 振 GUO Zhen张 威 Zhang Wei姚 佳 YAO Jia孔 慧 KONG Hui严茹红 YAN Ru-hongLianqun Zhou
Jing ZhouKai ZhangJie LiuGe SongBaoxian Ye