Optimized Ammonia-Sensing Electrode with CeO2/rGO Nano-Composite Coating Synthesized by Focused Laser Ablation in Liquid

Nanomaterials Pub Date : 2024-07-23 DOI:10.3390/nano14151238
Mengqi Shi, Hiroyuki Wada
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Abstract

This study investigated the synthesis of cerium oxide (CeO2) nanoparticles (NPs) and composites with reduced graphene oxide (rGO) for the enhanced electrochemical sensing of ammonia. CeO2 NPs were prepared by the focused laser ablation in liquid (LAL) method, which enabled the production of high-purity, spherical nanoparticles with a uniform dispersion and sizes under 50 nm in a short time. The effects of varying irradiation fluence and time on the nanoparticle size, production yield, and dispersion were systematically studied. The synthesized CeO2 NPs were doped with rGO to form CeO2/rGO composites, which were drop casted to modify the glassy carbon electrodes (GCE). The CeO2/rGO-GCE electrodes exhibited superior electrochemical properties compared with single-component electrodes, which demonstrated the significant potential for ammonia detection, especially at a 4 J/cm2 fluence. The CeO2/rGO composites showed uniformly dispersed CeO2 NPs between the rGO sheets, which enhanced the conductivity, as confirmed by SEM, EDS mapping, and XRD analysis. Cyclic voltammetry data demonstrated superior electrochemical activity of the CeO2/rGO composite electrodes, with the 2rGO/1CeO2 ratio showing the highest current response and sensitivity. The CV response to varying ammonia concentrations exhibited a linear relationship, indicating the electrode’s capability for accurate quantification. These findings highlight the effectiveness of focused laser ablation in enhancing nanoparticle synthesis and the promising synergistic effects of CeO2 and rGO in developing high-performance electrochemical sensors.
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通过液态聚焦激光烧蚀技术合成的具有 CeO2/rGO 纳米复合涂层的优化氨传感电极
本研究探讨了氧化铈(CeO2)纳米粒子(NPs)的合成以及与还原氧化石墨烯(rGO)的复合材料,用于增强氨的电化学传感。CeO2 NPs 是通过液态聚焦激光烧蚀(LAL)法制备的,这种方法能在短时间内制备出高纯度、分散均匀、尺寸小于 50 nm 的球形纳米粒子。系统研究了不同辐照通量和时间对纳米粒子尺寸、产量和分散性的影响。将合成的 CeO2 NPs 掺杂到 rGO 中形成 CeO2/rGO 复合材料,并将其滴铸以改性玻璃碳电极 (GCE)。与单组分电极相比,CeO2/rGO-GCE 电极表现出更优越的电化学特性,尤其是在 4 J/cm2 的通量下,显示出检测氨的巨大潜力。经 SEM、EDS 图谱和 XRD 分析证实,CeO2/rGO 复合材料在 rGO 片之间显示出均匀分散的 CeO2 NPs,从而增强了导电性。循环伏安数据表明,CeO2/rGO 复合电极具有优异的电化学活性,其中 2rGO/1CeO2 比率的电极具有最高的电流响应和灵敏度。对不同浓度氨气的 CV 响应呈线性关系,表明电极具有精确定量的能力。这些发现凸显了聚焦激光烧蚀在促进纳米粒子合成方面的有效性,以及 CeO2 和 rGO 在开发高性能电化学传感器方面的协同效应。
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