Key Laboratory of Modern Agricultural Equipment and Technology (Jiangsu University), Ministry of Education, School of Agricultural Engineering, Jiangsu University, Zhenjiang, 212013, PR China; School of Food Engineering, Anhui Science and Technology University, Fengyang, 233100, PR China.
Key Laboratory of Modern Agricultural Equipment and Technology (Jiangsu University), Ministry of Education, School of Agricultural Engineering, Jiangsu University, Zhenjiang, 212013, PR China.
Anal Chim Acta. 2023 Mar 8;1245:340880. doi: 10.1016/j.aca.2023.340880. Epub 2023 Jan 21.
Over use of lincomycin (LIN) as antibiotic in animals can lead to multiple harmful impacts to public health, thus detection of LIN at trace level in milk and chicken sample matrixes is vital. In this work, Zinc phthalocyanine nanoparticles sensitized MoS (ZnPc/MoS) was firstly developed as a novel photocathode material combined with nitrogen-doped graphene-loaded TiO nanoparticles (TiO/NG) as photoanode material to construct a dual-photoelectrode photofuel cell (PFC). The as-prepared membrane/mediator-free PFC achieved excellent output performance that the maximum power density (P) reached 11.83 μW cm. Specific aptamers are adopted as LIN recognition elements, the as-proposed self-powered aptasensor for LIN exhibited a linear scope in 10 -10 mol L along with a low detection limit (3S/N) of 3.33 pmol L. Consequently, such high-power density dual-photoelectrode PFC aptasensor may be a reassuring candidate electrochemical sensor for the detection of trace contamination in food samples.
林可霉素(LIN)在动物中作为抗生素的过度使用会对公共健康造成多种有害影响,因此在牛奶和鸡肉样品基质中痕量检测 LIN 至关重要。在这项工作中,首次开发了锌酞菁纳米粒子敏化的 MoS(ZnPc/MoS)作为新型光电阴极材料,结合负载氮掺杂石墨烯的 TiO2 纳米粒子(TiO/NG)作为光阳极材料,构建了双光电电极光燃料电池(PFC)。所制备的无膜/无介体 PFC 实现了出色的输出性能,最大功率密度(P)达到 11.83 μW cm。采用特定的适体作为 LIN 的识别元件,所提出的自供电适体传感器用于 LIN 的检测范围在 10-10 mol L 内呈线性,检测限(3S/N)低至 3.33 pmol L。因此,这种高功率密度双光电电极 PFC 适体传感器可能是用于检测食品样品中痕量污染的可靠电化学传感器候选者。