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一种CeO-ZnO-壳聚糖杂化纳米复合材料作为用于高灵敏伏安法测定对乙酰氨基酚及其降解产物对氨基酚的增强传感平台。

A hybrid nanocomposite of CeO-ZnO-chitosan as an enhanced sensing platform for highly sensitive voltammetric determination of paracetamol and its degradation product -aminophenol.

作者信息

Almandil Noor B, Ibrahim Mohamed, Ibrahim Hossieny, Kawde Abdel-Nasser, Shehatta Ibrahim, Akhtar Sultan

机构信息

Department of Clinical Pharmacy Research, Institute for Research and Medical Consultations, Imam Abdulrahman Bin Faisal University P. O. Box 1982 Dammam 31441 Saudi Arabia

Chemistry Department, Faculty of Science, Assiut University Assiut Egypt

出版信息

RSC Adv. 2019 May 21;9(28):15986-15996. doi: 10.1039/c9ra01587f. eCollection 2019 May 20.

Abstract

For the determination of paracetamol (PAR) and its primary degradation product (-aminophenol, PAP) a highly selective electrochemical sensor was fabricated. A glassy carbon microspheres paste electrode (GCMPE) was modified with a CeO-ZnO-chitosan hybrid nanocomposite (CeO-ZnO-CS) which was characterized by X-ray diffraction and transmission electron microscopy. The CeO-ZnO-CS/GCMPE was characterized by scanning electron microscopy, and cyclic voltammetry. The modified GCMPE exhibits excellent electrocatalytic activity for the determination of PAR and PAP separately or simultaneously, typically at working potentials of 0.38 and 0.09 V Ag/AgCl. The square wave voltammetric response in solutions of near-neutral pH value increases linearly in the 20 nM to 1.8 μM PAR concentration range, and the lower LOD is 0.86 nM. The sensor is shown to enable the determination of PAR even in the presence of a 180-fold excess of PAP. PAR and PAP can also be simultaneously determined, and the LODs for PAR and PAP are 0.98 nM and 9.5 nM, respectively. The results agreed well with data obtained using other electrodes. The sensor is reproducible and stable over eight weeks, and interference by biologically essential compounds is negligible. The method was applied to the determination of PAR in pharmaceutical formulations and in spiked blood serum and urine samples. The relative standard deviations ranged from 97.5 to 102.0%.

摘要

为了测定对乙酰氨基酚(PAR)及其主要降解产物对氨基苯酚(PAP),制备了一种高选择性电化学传感器。用CeO-ZnO-壳聚糖杂化纳米复合材料(CeO-ZnO-CS)修饰玻碳微球糊电极(GCMPE),并用X射线衍射和透射电子显微镜对其进行了表征。通过扫描电子显微镜和循环伏安法对CeO-ZnO-CS/GCMPE进行了表征。修饰后的GCMPE在分别或同时测定PAR和PAP时表现出优异的电催化活性,通常在0.38和0.09 V(相对于Ag/AgCl)的工作电位下。在近中性pH值溶液中的方波伏安响应在20 nM至1.8 μM的PAR浓度范围内呈线性增加,最低检测限为0.86 nM。该传感器即使在存在180倍过量PAP的情况下也能测定PAR。PAR和PAP也可以同时测定,PAR和PAP的最低检测限分别为0.98 nM和9.5 nM。结果与使用其他电极获得的数据吻合良好。该传感器在八周内具有可重复性和稳定性,生物必需化合物的干扰可忽略不计。该方法应用于药物制剂以及加标血清和尿液样品中PAR的测定。相对标准偏差范围为97.5%至102.0%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ea75/9064269/30a403916955/c9ra01587f-s1.jpg

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