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基于生物炭和还原氧化石墨烯纳米复合材料的电化学传感器用于多菌灵的测定。

Electrochemical sensor based on biochar and reduced graphene oxide nanocomposite for carbendazim determination.

机构信息

Programa de Pós-Graduação Em Química, Universidade Federal de Sergipe (UFS), CEP 49.100-000, São Cristovão, SE, Brazil; Laboratório de Corrosão e Nanotecnologia (LCNT), Núcleo de Competência Em Petróleo e Gás de Sergipe (NUPEG), Universidade Federal de Sergipe (UFS), CEP 49.100-000, São Cristovão, SE, Brazil.

Laboratório de Corrosão e Nanotecnologia (LCNT), Núcleo de Competência Em Petróleo e Gás de Sergipe (NUPEG), Universidade Federal de Sergipe (UFS), CEP 49.100-000, São Cristovão, SE, Brazil.

出版信息

Talanta. 2020 Dec 1;220:121334. doi: 10.1016/j.talanta.2020.121334. Epub 2020 Jul 9.

Abstract

For the first time, a nanocomposite based on biochar and reduced graphene oxide (rGO) was employed to construct a modified carbon paste electrode and applied for the determination of carbendazim (CBZ). Biochar was obtained by through pyrolysis of Eichhornia crassipes biomass, also known how "Aguapé" at 400 °C. The modified electrode with our nanocomposite proposal shows to be able to preconcentrate CBZ and presented the highest analytical response in comparison to the unmodified electrode and by the electrodes prepared with the proposed materials separately. Using differential pulse voltammetry (DPV) under optimized conditions, the sensor showed a linear dynamic response (LDR) from 30 to 900 nmol L, a limit of detection (LOD) of 2.3 nmol L and limit of quantification (LOQ) of 7.7 nmol L. No significant influence of inorganic ions or organic compounds on sensor response was verified, considering the recovery evaluation data. The proposed sensor was successfully applied for the determination of CBZ in spiked whole orange juice, lettuce leaves, drinking water, and wastewater samples. Good recovery values were found using the ex-situ methodology, showing excellent analytical performance of the electrochemical sensor based on biochar and rGO nanocomposite.

摘要

首次使用基于生物炭和还原氧化石墨烯(rGO)的纳米复合材料构建了修饰碳糊电极,并将其用于测定多菌灵 (CBZ)。生物炭是通过在 400°C 下对凤眼蓝生物质进行热解获得的,凤眼蓝也被称为“Aguapé”。与未修饰电极和分别用提议材料制备的电极相比,带有我们纳米复合材料提案的修饰电极能够预浓缩 CBZ 并表现出最高的分析响应。在优化条件下使用差分脉冲伏安法 (DPV),传感器显示出从 30 到 900 nmol L 的线性动态响应 (LDR),检测限 (LOD) 为 2.3 nmol L,定量限 (LOQ) 为 7.7 nmol L。考虑到回收评估数据,未发现无机离子或有机化合物对传感器响应有显著影响。该传感器成功应用于测定加标橙汁、生菜叶、饮用水和废水样品中的 CBZ。使用原位方法获得了良好的回收率值,表明基于生物炭和 rGO 纳米复合材料的电化学传感器具有出色的分析性能。

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