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Enhanced electrochemiluminescence of luminol by an in situ silver nanoparticle-decorated graphene dot for glucose analysis

机译:原位修饰的纳米银修饰石墨烯点增强鲁米诺的电化学发光,用于葡萄糖分析

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Herein, a rapid, linker-free, single-step strategy for in situ synthesis of graphene quantum dot–luminol–Ag nanoparticle (GQD–luminol–AgNP) nanocomposites was designed by reducing AgNO3 with an electrochemiluminescent reagent, luminol, in the presence of GQDs. The nanocomposites were characterized using transmission electron microscopy, UV-vis absorption spectroscopy, and EDS. The results indicated that many Ag nanoparticles (AgNPs) with an average diameter of about 5 nm were dispersed uniformly on the surface of GQD nanosheets. Luminol molecules were also decorated on the nanocomposite surface. Thus, the nanocomposites showed excellent electrochemiluminescence (ECL) activity in presence of H2O2. To build a glucose ECL-based biosensor, the prepared sensor was also modified with glucose oxidase (GOx). The GOx enzyme was covalently immobilized on the GQD–luminol–AgNP-modified glassy carbon electrode. The designed ECL biosensor showed great performance towards glucose detection in the concentration range between 25 and 250 μM with a satisfactory detection limit (8 μM).
机译:本文设计了一种在不存在石墨烯的情况下,用电化学发光试剂鲁米诺还原AgNO3的方法,用于石墨烯量子点-鲁米诺-Ag纳米颗粒(GQD-鲁米诺-AgNP)纳米复合材料的原位合成快速,无接头的单步策略。 GQD。使用透射电子显微镜,紫外可见吸收光谱和EDS对纳米复合材料进行表征。结果表明,许多平均直径约为5 nm的Ag纳米颗粒(AgNPs)均匀分散在GQD纳米片的表面上。鲁米诺分子也被修饰在纳米复合材料表面上。因此,在H2O2存在下,纳米复合材料显示出优异的电化学发光(ECL)活性。为了构建基于葡萄糖ECL的生物传感器,还使用葡萄糖氧化酶(GOx)修改了制备的传感器。 GOx酶共价固定在GQD-鲁米诺-AgNP修饰的玻碳电极上。设计的ECL生物传感器在25至250μM的浓度范围内表现出了出色的葡萄糖检测性能,并且检测限令人满意(8μM)。

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