Institute of Engineering Biology and Health, Collaborative Innovation Center of Yangtze River Delta Region Green Pharmaceuticals, College of Pharmaceutical Sciences, Zhejiang University of Technology, Zhejiang, 310014, Hangzhou, China.
Key Laboratory for Green Processing of Chemical Engineering of Xinjiang Bingtuan, School of Chemistry and Chemical Engineering, Shihezi University, Shihezi, China.
Mikrochim Acta. 2023 Mar 23;190(4):150. doi: 10.1007/s00604-023-05733-y.
For practical analysis and simultaneous detection of arbutin (AR) and hydrochinone (HQ) in cosmetics, an electrochemical sensor has been designed based on nitrogen and sulfur co-doped Fe-Ni alloy (N,S-FeNi/C) nanoparticles. The N,S-FeNi/C has been prepared for the first time via hydrothermal synthesis and high-temperature carbonization. N,S-FeNi/C not only improves the charge transfer to the surface, but also provides rich active sites and fast ion diffusion rates owing to the iron and nickel bimetallic materials. In addition, the d-band structure of transition metals (nickel and iron) introduced by the N and S atoms exhibits an electronic structure similar to that of noble metal catalysts, thus enhancing electrocatalytic activity and increasing conductivity. Additionally, the double doping of S and N atoms significantly increases the active sites of carbon atoms; thus, N-S-FeNi3/C exhibits excellent electrochemical catalytic activity for the oxidation of AR and HQ. Further, the N,S-FeNi/C sensor is used for the simultaneous determination of HQ and AR by square-wave pulse voltammetry. Distinct oxidation peaks of HQ and AR are observed at potentials of +0.028 V and +0.352 V (vs. SCE). The electrical signal increases linearly in the HQ concentration ranges of 0.1-100 μM and 0.05-70 μM for the simultaneous determination of AR and HQ with a detection limit as low as 0.0476 and 0.0135 μM (S/N = 3), respectively. Thus, rapid and accurate detection of AR and HQ in spiked cosmetics is successfully achieved, with a recovery ranging from 96.4 to 104.2%, and the relative standard deviation is lower than 3.8-4.0%.
为了对化妆品中的熊果苷(AR)和对苯二酚(HQ)进行实际分析和同时检测,设计了一种基于氮硫共掺杂 Fe-Ni 合金(N,S-FeNi/C)纳米粒子的电化学传感器。N,S-FeNi/C 首次通过水热合成和高温碳化制备。N,S-FeNi/C 不仅由于铁和镍双金属材料而提高了向表面的电荷转移,而且提供了丰富的活性位点和快速的离子扩散速率。此外,N 和 S 原子引入的过渡金属(镍和铁)的 d 带结构表现出类似于贵金属催化剂的电子结构,从而增强了电催化活性并提高了导电性。此外,S 和 N 原子的双重掺杂显著增加了碳原子的活性位点;因此,N-S-FeNi3/C 对 AR 和 HQ 的氧化表现出优异的电化学催化活性。此外,通过方波脉冲伏安法,使用 N,S-FeNi/C 传感器同时测定 HQ 和 AR。HQ 和 AR 的氧化峰分别在 +0.028 V 和 +0.352 V(相对于 SCE)的电位下观察到。HQ 和 AR 的同时测定的 HQ 浓度范围为 0.1-100 μM 和 0.05-70 μM 时,电信号呈线性增加,检测限分别低至 0.0476 和 0.0135 μM(S/N = 3)。因此,成功实现了对添加化妆品中 AR 和 HQ 的快速准确检测,回收率在 96.4%至 104.2%之间,相对标准偏差低于 3.8-4.0%。