Zou Yi, Xia Tiantian, Zuo Yanli, Gu Yu, Zhang Jiadong, Wei Jie, Qian Jing, Hao Nan, Wang Kun
School of Chemistry and Materials Science, Nanjing University of Information Science & Technology, Nanjing, 210044, People's Republic of China.
School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang, 212013, People's Republic of China.
Mikrochim Acta. 2023 Nov 13;190(12):466. doi: 10.1007/s00604-023-06057-7.
The successful development of a dual-mode sensing chip for deoxynivalenol (DON) detection using photoelectrochemical (PEC) and electrochromic visualization techniques is reported. By laser etching technology, different functional areas, including the photoanode, the cathode, and the electrochromic area, are fabricated on indium tin oxide (ITO) glass. Then, these three areas are further respectively modified with PEC active materials, platinum nanoparticles, and Prussian blue. Under light illumination, photocurrents generate between the photoanode and the cathode due to the separation of photo-induced electrons and holes in the TiO/3DNGH material. Meanwhile, the photo-induced electrons are transferred to Prussian blue on the visualization area, which will be reduced to colorless Prussian white. The binding of DON molecules and aptamers can promote electron transfer and reduce the recombination of electrons and holes, allowing for simultaneous quantitative detection of DON using either the photocurrent or color change. The sensor chip has a broad detection range of DON concentrations of 1 fg⋅mL to 100 pg⋅mL in the PEC mode with the limit of detection of 0.37 fg⋅mL, and 1 to 250 ng⋅mL in the visualization mode with the limit of detection of 0.51 ng⋅mL. This portable dual-mode sensor chip can be used in both laboratory and field settings without the need for specialized instruments, making it a powerful tool for ensuring food safety. At the same time, the analysis of the standard addition method of the actual sample by using the sensor chip shows that, in the PEC mode, the recoveries of the dual-mode aptasensor chip were 91.3 to 99.0% with RSD values of 1.732.55%, and in visualization mode, the recoveries of the dual-mode aptasensor chip were 99.2 to 102.0% with RSD values of 1.006.21%, which indicate good accuracy and reproducibility.
报道了一种利用光电化学(PEC)和电致变色可视化技术成功开发的用于脱氧雪腐镰刀菌烯醇(DON)检测的双模式传感芯片。通过激光蚀刻技术,在氧化铟锡(ITO)玻璃上制备了不同的功能区域,包括光阳极、阴极和电致变色区域。然后,这三个区域分别进一步用PEC活性材料、铂纳米颗粒和普鲁士蓝进行修饰。在光照下,由于TiO/3DNGH材料中光生电子和空穴的分离,在光阳极和阴极之间产生光电流。同时,光生电子转移到可视化区域的普鲁士蓝上,普鲁士蓝将被还原为无色的普鲁士白。DON分子与适配体的结合可促进电子转移并减少电子与空穴的复合,从而允许使用光电流或颜色变化同时对DON进行定量检测。该传感器芯片在PEC模式下对DON浓度的检测范围为1 fg⋅mL至100 pg⋅mL,检测限为0.37 fg⋅mL;在可视化模式下为1至250 ng⋅mL,检测限为0.51 ng⋅mL。这种便携式双模式传感器芯片无需专门仪器即可在实验室和现场环境中使用,是确保食品安全的有力工具。同时,使用该传感器芯片对实际样品进行标准加入法分析表明,在PEC模式下,双模式适配体传感器芯片的回收率为91.3%至99.0%,相对标准偏差(RSD)值为1.73%至2.55%;在可视化模式下,双模式适配体传感器芯片的回收率为99.2%至102.0%,RSD值为1.00%至6.21%,表明具有良好的准确性和重现性。