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基于氧化石墨烯负载的金纳米粒子内封装的氧化铈用于环境和生物样品中肼的安培传感检测。

Amperometric sensing of hydrazine in environmental and biological samples by using CeO-encapsulated gold nanoparticles on reduced graphene oxide.

机构信息

State Key Laboratory of Applied Organic Chemistry and Department of Chemistry, Lanzhou University, Lanzhou, 730000, China.

School of Basic Medical Sciences, Lanzhou, China, Lanzhou University, Lanzhou, 730000, China.

出版信息

Mikrochim Acta. 2019 Jan 4;186(1):46. doi: 10.1007/s00604-018-3144-4.

Abstract

CeO-encapsulated gold nanoparticles (AuNPs) were anchored to reduced graphene oxide (RGO/Au@CeO) by an interfacial auto-redox reaction in a solution containing tetrachloroauric acid and Ce(III) on a solid support. The resulting material was placed on a glassy carbon electrode (GCE) and used as an electrochemical hydrazine sensor at trace levels. The electrocatalytic activity of the modified GCE towards hydrazine oxidation was significantly enhanced as compared to only RGO/CeO, or CeO-encapsulated AuNPs, or AuNPs loaded on CeO modified with RGO. This enhancement is attributed to the excellent conductivity and large surface area of RGO, and the strong interaction between the reversible Ce/Ce and Au/Au redox systems. The kinetics of the hydrazine oxidation was studied by electrochemical methods. The sensor, best operated at a peak voltage of 0.35 V (vs. saturated calomel electrode), had a wide linear range (that extends from 10 nM to 3 mM), a low detection limit (3.0 nM), good selectivity and good stability. It was successfully employed for the monitoring of hydrazine in spiked environmental water samples and to in-vitro tracking of hydrazine in cells with respect to its potential cytotoxicity. Graphical abstract CeO-encapsulated gold nanoparticles anchored on reduced graphene oxide with the strong interaction between the reversible Ce/Ce and Au/Au reductions can be used for sensitive detection of hydrazine with detection limit of 3 nM and good selectivity in environmental and biological samples.

摘要

CeO 封装的金纳米粒子 (AuNPs) 通过在含有四氯金酸和 Ce(III) 的溶液中在固体载体上的界面自动氧化还原反应被锚定在还原氧化石墨烯 (RGO/Au@CeO) 上。所得材料被放置在玻碳电极 (GCE) 上,并作为痕量水平的电化学肼传感器使用。与仅 RGO/CeO、CeO 封装的 AuNPs 或负载在 RGO 修饰的 CeO 上的 AuNPs 相比,修饰后的 GCE 对肼氧化的电催化活性显著增强。这种增强归因于 RGO 的优异导电性和大表面积,以及可逆 Ce/Ce 和 Au/Au 氧化还原体系之间的强相互作用。通过电化学方法研究了肼氧化的动力学。该传感器在最佳工作峰电压为 0.35 V(相对于饱和甘汞电极)时,具有宽线性范围(从 10 nM 延伸至 3 mM)、低检测限(3.0 nM)、良好的选择性和良好的稳定性。它成功地用于环境水样中肼的监测,并用于细胞内肼的体外追踪,以研究其潜在的细胞毒性。示意图 CeO 封装的金纳米粒子通过可逆 Ce/Ce 和 Au/Au 还原之间的强相互作用锚定在还原氧化石墨烯上,可用于环境和生物样品中肼的灵敏检测,检测限低至 3 nM,选择性好。

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