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金纳米粒子/多酸/石墨烯三元纳米杂化物的简便合成:一种无酶电化学生物传感器用于过氧化氢。

Facile synthesis of Au-nanoparticle/polyoxometalate/graphene tricomponent nanohybrids: an enzyme-free electrochemical biosensor for hydrogen peroxide.

机构信息

Key Laboratory of Green Process and Engineering, Institute of Process Engineering, Chinese Academy of Sciences, 100190, Beijing, PR China.

出版信息

Small. 2012 May 7;8(9):1398-406. doi: 10.1002/smll.201102298. Epub 2012 Feb 21.

Abstract

A green, facile, one-pot synthesis of well-defined Au NPs@POM-GNSs tricomponent nanohybrids is reported (POM stands for polyoxometalate and GNSs for graphene nanosheets). The synthesis is convenient, rapid and environmentally friendly. The POMs serve as both reducing, encapsulating molecules, and bridging molecules; this avoids the introduction of other organic toxic molecules. Characterization using transmission electron microscopy, X-ray diffraction, X-ray photoelectron spectroscopy, and Raman spectroscopy analysis is performed, and the structure of the prepared nanohybrids of Au NPs@POM-GNSs is verified. Most importantly, the amperometric measurements show the Au NPs@POM-GNSs nanohybrids have high catalytic activity with good sensitivity, good long-term stability, wide linear range, low detection limit, and fast response towards H(2)O(2) detection for application as an enzyme-free biosensor. Transformation of the POMs during H(2)O(2) detection does not affect the catalytic activities of the nanohybrids. Thus, the synergistic effect of Au NPs and GNSs in the nanohybrids leads to the enhanced catalytic property.

摘要

报道了一种绿色、简便、一锅法合成具有明确结构的 Au NPs@POM-GNSs 三组分纳米杂化物的方法(POM 代表多金属氧酸盐,GNSs 代表石墨烯纳米片)。该合成方法方便、快速且环保。POM 既作为还原剂、封装分子,又作为桥联分子;这避免了引入其他有机有毒分子。通过透射电子显微镜、X 射线衍射、X 射线光电子能谱和拉曼光谱分析进行了表征,并验证了所制备的 Au NPs@POM-GNSs 纳米杂化物的结构。 重要的是,安培测量表明,Au NPs@POM-GNSs 纳米杂化物具有高催化活性、良好的灵敏度、良好的长期稳定性、宽线性范围、低检测限以及对 H2O2 检测的快速响应,可作为无酶生物传感器应用。在 H2O2 检测过程中 POM 的转化并不影响纳米杂化物的催化活性。因此,纳米杂化物中 Au NPs 和 GNSs 的协同作用导致了增强的催化性能。

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