Chi Hai, Yang Chong, Liu Guoqin
College of Food and Bioengineering, Xihua University, Chengdu 610039, China.
Inspection and Testing Institute of Eryuan County in Dali Prefecture of Yunnan Province, Yunnan Eryuan 671208, China.
Food Chem. 2024 Sep 15;452:139548. doi: 10.1016/j.foodchem.2024.139548. Epub 2024 May 6.
In this study, an electrochemical sensor based on MoS with enhanced electrochemical signals from electrochemically activated carbon cloth (EACC) electrodes and cross-linked o-aminothiophenol functionalized AuNPs (o-ATP@AuNPs) was developed for the detection of the unsaturated vegetable oil antioxidant tert-butylhydroquinone (TBHQ). In this approach, carbon cloth is activated through the implementation of electrochemical methods, thereby effectively increasing its specific surface area. The resulting EACC, serving as an electrode substrate, enables the growth of additional nanomaterials and enhances conductivity. The incorporation of MoS effectively augments the sensitivity of the electrochemical sensor. Subsequently, MIP/MoS/EMCC is formed via electropolymerization, utilizing TBHQ as the template molecule and o-ATP@AuNPs as the functional monomer. The SS bond of o-ATP ensures a strong and stable connection between MoS and o-ATP@AuNPs, thereby facilitating the immobilization of MIP. In addition, the high conductivity possessed by o-ATP@AuNPs could effectively improve the sensitivity of the electrochemical sensor. Under the optimal conditions, MIP/MoS/EMCC could determine TBHQ in the range of 1 × 10 μM to 120 μM by differential pulse voltammetry (DPV) with a detection line of 0.72 nM. The proposed MIP/MoS/EMCC is expected to be applied in the future for the selective and sensitive detection of TBHQ in vegetable oils.
在本研究中,开发了一种基于二硫化钼(MoS)的电化学传感器,该传感器具有来自电化学活化碳布(EACC)电极和交联邻氨基硫酚功能化金纳米粒子(o-ATP@AuNPs)增强的电化学信号,用于检测不饱和植物油抗氧化剂叔丁基对苯二酚(TBHQ)。在这种方法中,通过实施电化学方法对碳布进行活化,从而有效增加其比表面积。所得的EACC作为电极基底,能够生长额外的纳米材料并提高导电性。二硫化钼的引入有效增强了电化学传感器的灵敏度。随后,以TBHQ为模板分子,o-ATP@AuNPs为功能单体,通过电聚合形成MIP/MoS/EMCC。o-ATP的SS键确保了二硫化钼与o-ATP@AuNPs之间牢固且稳定的连接,从而促进MIP的固定。此外,o-ATP@AuNPs具有的高导电性可有效提高电化学传感器的灵敏度。在最佳条件下,MIP/MoS/EMCC通过差分脉冲伏安法(DPV)可测定1×10 μM至120 μM范围内的TBHQ,检测限为0.72 nM。所提出的MIP/MoS/EMCC有望在未来用于植物油中TBHQ的选择性和灵敏检测。