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首页> 外文期刊>New Journal of Chemistry >Efficiency improvement in non-enzymatic H2O2 detection induced by the simultaneous synthesis of Au and Ag nanoparticles in an RGO/Au/Fe3O4/Ag nanocomposite
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Efficiency improvement in non-enzymatic H2O2 detection induced by the simultaneous synthesis of Au and Ag nanoparticles in an RGO/Au/Fe3O4/Ag nanocomposite

机译:在RGO / Au / Fe3O4 / Ag纳米复合材料中同时合成Au和Ag纳米颗粒诱导的非酶促H2O2检测的效率提高

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Developing a quick and precise technique for hydrogen peroxide (H2O2) detection would open up a new class of technologies for biological, medical and chemical applications. Herein, using a polyol method, we report the synthesis of a reduced graphene oxide (RGO)/Au/Fe3O4/Ag nanocomposite with high electrocatalytic efficiency, involving a modified glassy carbon electrode for non-enzymatic trace analysis of H2O2. The resulting nanocomposite showed an inherently high specific surface area and fast electron transfer characteristics of graphene, and Au, Fe3O4 and Ag nanoparticles (NPs). With a detection limit of 1.43 mu M at a signal-to-noise ratio of 3 and a response time of 2 s, H2O2 concentrations ranging from 2 mu M to 12 mM can be detected by the nanocomposite sensor. By investigating non-enzymatic H2O2 detection in the presence of other biomaterials including ascorbic acid, uric acid, glucose and sucrose, the selectivity of the sensor was evaluated. Furthermore, we test our nanocomposite sensor for practical applications in detection of H2O2, indicating good recoveries for a hair dye cream as a pharmaceutical sample. Our results on the electrocatalytic efficiency of the RGO/Au/Fe3O4/Ag nanocomposite were compared with those of the RGO/Fe3O4 nanocomposite, revealing the role of Au and Ag NPs in the sensing performance improvement.
机译:为过氧化氢(H2O2)检测开发快速和精确的技术将为生物,医学和化学应用开辟一类新的技术。在此,使用多元醇方法,我们报告了具有高电催化效率的石墨烯(RGO)/ Au / Fe3O4 / Ag纳米复合材料的合成,涉及改性玻璃碳电极,用于H2O2的非酶痕量分析。所得纳米复合材料显示出固有的高比表面积和石墨烯的快速电子传递特性,Au,Fe 3 O 4和Ag纳米颗粒(NPS)。通过以3的信噪比为1.43μm的检出限,纳米复合传感器可以检测从2μm至12mm的2 s的响应时间为3.43μm,可以检测到2μm至12mm的H2O2浓度。通过在包括抗坏血酸,尿酸,葡萄糖和蔗糖的其他生物材料存在下研究非酶促的H 2 O 2检测,评价传感器的选择性。此外,我们测试我们的纳米复合体传感器,用于检测H2O2的实际应用,表明毛发染料作为药物样品的良好回收率。我们对RGO / Au / Fe3O4 / Ag纳米复合材料的电催化效率的结果与Rgo / Fe3O4纳米复合材料进行了比较,揭示了Au和Ag NP在感测性能改善中的作用。

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