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超声化学合成石墨相氮化碳包裹的双金属氧化物纳米粒子杂化材料及其对黄嘌呤电化学氧化的电催化活性。

Sonochemical synthesis of graphitic carbon nitrides-wrapped bimetal oxide nanoparticles hybrid materials and their electrocatalytic activity for xanthine electro-oxidation.

机构信息

Department of Botany and Microbiology, College of Science, King Saud University, Riyadh 11451, Saudi Arabia.

Department of Materials, Imperial College London, London SW7 2AZ, United Kingdom.

出版信息

Ultrason Sonochem. 2020 Jun;64:105006. doi: 10.1016/j.ultsonch.2020.105006. Epub 2020 Feb 8.

Abstract

A novel network-like magnetic nanoparticle was fabricated on a graphitic carbon nitride through a facile sonochemical route at frequency 20 kHz and power 70 W. To enhance the electrocatalytic activity of the modified materials, the graphitic carbon nitrides (g-CN) was prepared from melamine. Monitoring of xanthine concentration level in biological fluids is more important for clinical diagnosis and medical applications. As modified CuFeO/g-CN nanocomposite exhibits better electrochemical activity towards the oxidation of xanthine with higher anodic current compared to other modified and unmodified electrode for the detection of xanthine with larger linear range (0.03-695 µM) and lower limit of detection (13.2 nM). To compare with these methods, the electrochemical techniques may be an alternative high sensitive method due to their simplicity and rapid detection time. In addition, the practical feasibility of the sensor was inspected with biological samples, reveals the acceptable recovery of the sensor in real samples.

摘要

一种新型的网络状磁性纳米粒子通过在 20 kHz 频率和 70 W 功率下的简单声化学途径在石墨相氮化碳上制造。为了提高修饰材料的电催化活性,将石墨相氮化碳 (g-CN) 从三聚氰胺制备。监测生物流体中的黄嘌呤浓度水平对于临床诊断和医学应用更为重要。由于改性 CuFeO/g-CN 纳米复合材料在氧化黄嘌呤方面表现出更好的电化学活性,与其他修饰和未修饰电极相比,具有更高的阳极电流,用于检测黄嘌呤的线性范围更大 (0.03-695 µM),检测限更低 (13.2 nM)。与这些方法相比,由于其简单性和快速检测时间,电化学技术可能是一种替代的高灵敏度方法。此外,还通过生物样品检验了传感器的实际可行性,表明传感器在实际样品中的回收率可以接受。

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