Bio-carbon-derived porous reduced graphene oxide photo- and electrochemical sensor for ultra-sensitive detection of testosterone hormone

IF 2.2 4区 化学 Q2 Engineering
G. Dinesh Ram, S. Praveen Kumar
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引用次数: 0

Abstract

In this study, we report the development of a novel bio-carbon-derived porous reduced graphene oxide (BC-rGO) photo- and electrochemical sensor for the ultra-sensitive detection of testosterone hormone. Bio-carbon-derived rGO, synthesized from agricultural waste, offers a sustainable, cost-effective, and environmentally friendly alternative to traditional chemically derived rGO. The effect of different thermal reduction temperatures (100 °C, 200 °C, 300 °C, and 400 °C) on the properties of the synthesized rGO was investigated. The crystallite sizes of BC-rGO1, BC-rGO2, BC-rGO3, and BC-rGO4 were determined to be 65 nm, 54 nm, 48 nm, and 41 nm, respectively, using the X-Ray diffraction (XRD) data. The scanning electron microscopy (SEM) and transmission electron microscopy (TEM) images revealed the morphology of the prepared rGO nanosheets, showcasing a two-dimensional nanostructure with transparent lamellar structures and abundant folds dispersed throughout the basal plane. To construct the biosensor for testosterone detection, the BC-rGO was initially fabricated by chemical cross-linking and used to modify the Nafion-pretreated glassy carbon electrode (GCE). BC-rGO prepared at 400 °C demonstrated superior sensitivity and selectivity toward testosterone detection, owing to the enhanced surface chemistry facilitated by the bio-carbon-derived material. The sensor's performance was evaluated through both photo- and electrochemical methods, revealing ultra-sensitive detection capabilities for testosterone hormone. Among the fabricated electrodes, Nafion/BC-rGO4 on GCE showed the highest electrochemical response, indicating superior activity in testosterone oxidation. The synergistic effects of BC-derived 2D rGO and testosterone increase the photocatalytic activity of Nafion/BC-rGO@GCE, making it more effective at detecting testosterone than Nafion@GCE. The results demonstrated that the thermal reduction temperature significantly influenced the electrochemical performance of the rGO, with the optimal performance observed at 400 °C. The use of BC-derived rGO not only addresses environmental sustainability but also provides a highly efficient platform for the sensitive and selective detection of testosterone, making it a promising candidate for medical applications.

用于超灵敏检测睾酮激素的生物碳衍生多孔还原氧化石墨烯光电和电化学传感器
在本研究中,我们报告了一种新型生物碳衍生多孔还原氧化石墨烯(BC-rGO)光电和电化学传感器的开发情况,该传感器可用于睾酮激素的超灵敏检测。由农业废弃物合成的生物碳还原氧化石墨烯为传统化学还原氧化石墨烯提供了一种可持续、经济、环保的替代品。研究人员考察了不同热还原温度(100 °C、200 °C、300 °C和400 °C)对合成 rGO 性能的影响。利用 X 射线衍射(XRD)数据确定了 BC-rGO1、BC-rGO2、BC-rGO3 和 BC-rGO4 的结晶尺寸分别为 65 nm、54 nm、48 nm 和 41 nm。扫描电子显微镜(SEM)和透射电子显微镜(TEM)图像显示了所制备的 rGO 纳米片的形态,其二维纳米结构具有透明的层状结构和分散在整个基底面上的大量褶皱。为了构建用于检测睾酮的生物传感器,首先通过化学交联法制备了 BC-rGO,并将其用于修饰经过纳菲昂预处理的玻璃碳电极(GCE)。由于生物碳衍生材料增强了表面化学性质,在 400 °C 下制备的 BC-rGO 对睾酮的检测具有极佳的灵敏度和选择性。该传感器的性能通过光电和电化学方法进行了评估,显示了对睾酮激素的超灵敏检测能力。在制备的电极中,GCE 上的 Nafion/BC-rGO4 显示出最高的电化学响应,表明其在睾酮氧化方面具有卓越的活性。BC 衍生的二维 rGO 和睾酮的协同作用提高了 Nafion/BC-rGO@GCE 的光催化活性,使其比 Nafion@GCE 更有效地检测睾酮。结果表明,热还原温度对 rGO 的电化学性能有显著影响,在 400 °C 时可观察到最佳性能。使用萃取自萃取物的 rGO 不仅能实现环境的可持续发展,还能为睾酮的灵敏度和选择性检测提供高效平台,使其成为医疗应用的理想候选材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chemical Papers
Chemical Papers Chemical Engineering-General Chemical Engineering
CiteScore
3.30
自引率
4.50%
发文量
590
期刊介绍: Chemical Papers is a peer-reviewed, international journal devoted to basic and applied chemical research. It has a broad scope covering the chemical sciences, but favors interdisciplinary research and studies that bring chemistry together with other disciplines.
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