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Ag/α-FeO/rGO 纳米复合材料的超级电容器和电化学硝酸盐传感的双功能性质,使用四丁基硝酸铵作为离子选择性膜。

Bifunctional properties of Ag/α-FeO/rGO nanocomposite for supercapacitor and electrochemical nitrate sensing using tetradodecyl ammonium nitrate as ion-selective membrane.

机构信息

Department of Electronics and Communication Engineering, B. S. Abdur Rahman Crescent Institute of Science & Technology, Chennai, 600048, India.

Academy of Scientific and Innovative Research (AcSIR), Ghaziabad, 201002, India.

出版信息

Environ Sci Pollut Res Int. 2024 Aug;31(40):52886-52904. doi: 10.1007/s11356-024-34703-x. Epub 2024 Aug 21.

Abstract

Noble metal nanoparticles incorporated in hybrid nanocomposites are considered as promising candidates for electrochemical applications owing to their physicochemical properties. In this work, we demonstrated the preparation of FeO/rGO nanocomposite by hydrothermal method, followed by in situ Ag binding synthesis for the fabrication of hybrid nanocomposite (Ag/α-FeO/rGO). The crystallographic structure of the hybrid nanocomposite is examined by X-ray diffraction (XRD) analysis which confirms the characteristics of Ag, FeO, and rGO. The microscopic studies and energy-dispersive X-ray analysis (EDS) spectra confirmed the presence and formation of hybrid nanostructures. Raman analysis results further corroborate the formation of composite with significant D and G bands in FeO/rGO and Ag/α-FeO/rGO samples, which follow XRD results. Cyclic voltammetry (CV) and galvanostatic charge-discharge (GCD) studies were carried out to analyze the faradaic capacitor behavior. A specific capacitance of 209.09 F/g was observed by GCD studies for Ag/α-FeO/rGO composites at a current density of 1 A/g, which exhibited good capacitance retention of 94% for 5000 cycles at 7 A/g. Furthermore, the Ag/α-FeO/rGO electrode was used for the electrochemical detection of nitrate ions in soil by utilizing an ion-selective membrane over the surface of the Ag/α-FeO/rGO electrode. The fabricated nanocomposite electrode showed a significant change in the peak current values with the concentration of nitrate in a linear range from 10 to 450 μM with the sensitivity to be calculated 1.426 μA μM cm and limit of detection (LOD) calculated to be 0.18 μM. The reproducibility and interference studies showed a promising result to be utilized for detecting nitrate ions in soil and in real-time applications.

摘要

负载于杂化纳米复合材料中的贵金属纳米粒子因其物理化学性质而被认为是电化学应用的有前途的候选材料。在这项工作中,我们通过水热法制备了 FeO/rGO 纳米复合材料,然后通过原位 Ag 结合合成制备了杂化纳米复合材料(Ag/α-FeO/rGO)。通过 X 射线衍射(XRD)分析对杂化纳米复合材料的晶体结构进行了检查,该分析证实了 Ag、FeO 和 rGO 的特征。微观研究和能量色散 X 射线分析(EDS)谱证实了杂化纳米结构的存在和形成。拉曼分析结果进一步证实了在 FeO/rGO 和 Ag/α-FeO/rGO 样品中存在复合材料,并且在 FeO/rGO 和 Ag/α-FeO/rGO 样品中出现了明显的 D 和 G 带,这与 XRD 结果一致。循环伏安法(CV)和恒电流充放电(GCD)研究用于分析法拉第电容器行为。通过 GCD 研究在 1 A/g 的电流密度下观察到 Ag/α-FeO/rGO 复合材料的比电容为 209.09 F/g,在 7 A/g 下 5000 次循环后表现出 94%的良好电容保持率。此外,通过在 Ag/α-FeO/rGO 电极表面使用离子选择性膜,将 Ag/α-FeO/rGO 电极用于土壤中硝酸盐离子的电化学检测。所制备的纳米复合材料电极在硝酸盐浓度的线性范围内(从 10 到 450 μM)显示出显著的峰值电流值变化,灵敏度计算为 1.426 μA μM cm,检测限(LOD)计算为 0.18 μM。重现性和干扰研究显示出有希望的结果,可用于检测土壤中的硝酸盐离子和实时应用。

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