Chemistry and Biotechnology Research Group (QUIBIO), Faculty of Basic Sciences, Campus Pampalinda, Universidad Santiago de Cali, Cali 760035, Colombia.
Molecules. 2022 Feb 25;27(5):1550. doi: 10.3390/molecules27051550.
This study used substituted barium hexaferrites, which were previously prepared and reported by the authors, to detect acetaminophen by the modification of a conventional glassy carbon electrode (GCE), which led to promising results. The synthesis of this electrode-modifying material was conducted using a citrate sol gel process. A test synthesis using glycerin and propylene glycol revealed that glycerin produced a better result, while less positive anodic potential values were associated with the electrooxidation of N-acetyl-p-aminophenol (NAP). Excellent electroactivity was exhibited by the cobalt-substituted barium-hexaferrite-nanomaterial-modified electrode. A good linear relationship between the concentration and the current response of acetaminophen (paracetamol) was obtained with a detection limit of (0.255 ± 0.005) µM for the BaCoFeO GCE, (0.577 ± 0.007) µM for the BaCuFeO GCE, and (0.595 ± 0.008) µM for the bare GCE. The levels of NAP in a real sample of urine were quantitatively analyzed using the proposed method, with recovery ranges from 96.6% to 101.0% and 93.9% to 98.4% for the modified electrode with Cobalt-substituted barium hexaferrites (CoF) and Copper-substituted barium hexaferrites (CuF), respectively. These results confirm the high electrochemical activity of BaCoFeO nanoparticles and thus their potential for use in the development of sensing devices for substances of pharmaceutical interest, such as acetaminophen (NAP).
本研究使用了先前由作者制备和报道的取代钡铁氧体,通过修饰传统的玻碳电极(GCE)来检测对乙酰氨基酚,取得了有前景的结果。这种电极修饰材料的合成采用了柠檬酸溶胶凝胶法。使用甘油和丙二醇的测试合成表明,甘油产生了更好的结果,而与 N-乙酰对氨基酚(NAP)的电氧化相关的更正的阳极电位值则较低。钴取代钡铁氧体纳米材料修饰电极表现出优异的电活性。在 BaCoFeO GCE 中,对乙酰氨基酚(扑热息痛)的浓度与电流响应之间获得了良好的线性关系,检测限为(0.255 ± 0.005)µM,BaCuFeO GCE 为(0.577 ± 0.007)µM,裸 GCE 为(0.595 ± 0.008)µM。使用所提出的方法对尿液的真实样品中的 NAP 水平进行了定量分析,用钴取代钡铁氧体(CoF)和铜取代钡铁氧体(CuF)修饰电极的回收率范围分别为 96.6%至 101.0%和 93.9%至 98.4%。这些结果证实了 BaCoFeO 纳米粒子的高电化学活性,因此它们有可能用于开发对乙酰氨基酚(NAP)等具有药物意义的物质的传感装置。