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设计一种新型纳米复合材料,将氧化石墨烯与纳米铋结合,用于电化学传感器的开发。

Design of a new nanocomposite between bismuth nanoparticles and graphene oxide for development of electrochemical sensors.

机构信息

Laboratório de Sensores Eletroquímicos - LabSensE, Universidade Federal do Paraná, Curitiba, PR, Brazil.

Grupo de Química dos Materiais - GQM, Universidade Federal do Paraná, Curitiba, PR, Brazil.

出版信息

Mater Sci Eng C Mater Biol Appl. 2017 Oct 1;79:262-269. doi: 10.1016/j.msec.2017.05.033. Epub 2017 May 8.

Abstract

This study describes a new route for preparation of a nanocomposite between graphene oxide (GO) and bismuth nanoparticles (BiNPs) and its evaluation as modifier electrode for development of electrochemical sensors. BiNPs were synthesized under ultrasound conditions using Bi(NO) as metal precursor and ascorbic acid (AA) as reducing agent/passivating. Some experimental parameters of BiNPs synthesis such as Bi:AA molar ratio and reaction time were conducted aiming the best voltammetric performance of the sensor. Glassy carbon electrodes (GCE) were modified by drop-casting with the BiNPs dispersions and anodic stripping voltammetry measurements were performed and revealed an improvement in the sensitivityfor determination of Cd(II) and Pb(II) compared to an unmodified electrode. The best electrochemical response was obtained for a BiNPs synthesis with Bi:AA molar ratio of 1:6 and reaction time of 10min, which yielded Bi metallic nanoparticles with average size of 5.4nm confirmed by XRD and TEM images, respectively. GO was produced by graphite oxidation using potassium permanganate and exfoliated with an ultrasound tip. GO-BiNPs nanocomposite was obtained by a simple mixture of GO and BiNPs dispersions in water and kept under ultrasonic bath for 1h. GCE were modified with a nanocomposite suspension containing 0.3 and 1.5mgmL of GO and BiNPs in water, respectively. Under optimized conditions, the proposed nanocomposite was evaluated on the voltammetric determination of Pb (II) and Cd (II), leading to a linear response range between 0.1 and 1.4μmolL for both cations, with limit of detection of 30 and 27nmolL, respectively. These results indicate the great potential of the GO-BiNPs nanocomposite for improving the sensitivity of voltammetric procedures.

摘要

这项研究描述了一种将氧化石墨烯(GO)和铋纳米粒子(BiNPs)制备成纳米复合材料的新途径,并将其作为修饰电极用于开发电化学传感器进行了评估。BiNPs 是在超声条件下使用 Bi(NO)作为金属前体和抗坏血酸(AA)作为还原剂/钝化剂合成的。为了获得传感器最佳的伏安性能,对 BiNPs 合成的一些实验参数(如 Bi:AA 摩尔比和反应时间)进行了研究。通过滴铸法将玻碳电极(GCE)修饰,进行阳极溶出伏安法测量,结果表明,与未修饰电极相比,Cd(II)和 Pb(II)的测定灵敏度有所提高。BiNPs 合成的最佳电化学响应是在 Bi:AA 摩尔比为 1:6 和反应时间为 10min 的条件下获得的,这得到了 XRD 和 TEM 图像分别证实的平均尺寸为 5.4nm 的 Bi 金属纳米粒子。GO 是通过使用高锰酸钾氧化石墨并通过超声探头剥离而产生的。GO-BiNPs 纳米复合材料是通过将 GO 和 BiNPs 分散体简单混合在水中,并在超声浴中保持 1 小时获得的。将 GCE 用分别含有 0.3 和 1.5mgmL 的 GO 和 BiNPs 的纳米复合材料悬浮液修饰。在优化条件下,该纳米复合材料用于测定 Pb(II)和 Cd(II)的伏安法,对于两种阳离子,线性响应范围分别在 0.1 和 1.4μmolL 之间,检测限分别为 30 和 27nmolL。这些结果表明,GO-BiNPs 纳米复合材料在提高伏安法的灵敏度方面具有很大的潜力。

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