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首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Robust Nanocomposite of Nitrogen-Doped Reduced Graphene Oxide and MnO2 Nanorods for High-Performance Supercapacitors and Nonenzymatic Peroxide Sensors
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Robust Nanocomposite of Nitrogen-Doped Reduced Graphene Oxide and MnO2 Nanorods for High-Performance Supercapacitors and Nonenzymatic Peroxide Sensors

机译:氮掺杂石墨烯氧化物的鲁棒纳米复合材料和用于高性能超级电容器和非酶过氧化物传感器的MnO2纳米棒

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摘要

The urgent demand of sustainable energy systems and reliable sensing devices has fostered the development of cost-effective, multifunctional electrode material based platforms. In this work, we have demonstrated the bifunctionality of nitrogen-doped reduced graphene oxide-MnO2 nanocomposite (NRGO-MnO2), toward two most diverse and challenging applications: (i) super capacitor and (ii) peroxide sensor, which was synthesized by a facile one-pot hydrothermal method. The electrochemical investigations revealed its high specific capacitance (648 F g(-1) at 1.5 A g(-1)) with remarkable rate performance (retains 80.20% up to 10 A g(-1)) and long-term cyclic efficiency. Additionally, it can detect peroxide rapidly (2 s), with high sensitivity (2081 mu mM(-1) cm(-2)) and a noteworthy detection limit (24 nM) in a wide dynamic range (0.4-121.2 mu M). Fascinating features such as the distinguished selectivity, repeatability, and operational stability suggests its potency to be an ideal electrode for peroxide sensors. Finally, the charge transfer kinetics and capacitive components, probed by electrochemical impedance spectroscopy (EIS), are found to be in correlation with other investigations. The positive synergism between MnO2 nanorods and NRGO induces higher conductivity and surface area, which eventually promotes superior supercapacitor and sensor performances. The results highlight NRGO-MnO2 nanocomposite as a multifunctional, cutting edge, and sustainable material for next-generation energy storage and sensing applications.
机译:可持续能源系统和可靠的传感设备的紧迫需求促进了经济效益的多功能电极材料的平台的开发。在这项工作中,我们已经证明了氮气掺杂的石墨烯氧化物-MNO2纳米复合材料(NRGO-MNO2)的双官能团,朝向两个多样化和挑战性的应用:(i)超氧化物传感器(I)由A合成的过氧化物传感器便携式一锅水热法。电化学研究揭示了其高比电容(648V(-1),在1.5Ag(-1)),速率显着性能(保留80.20%,高达10 A g(-1))和长期环状效率。另外,它可以快速检测过氧化物(2秒),具有高灵敏度(2081μmmm(-1)cm(-2)cm(-2))和宽动态范围内的值得注意的检测限(24nm)(0.4-121.2μm) 。诱人的特征,如具有显着的选择性,可重复性和操作稳定性,表明其效力是过氧化物传感器的理想电极。最后,发现电化学阻抗光谱(EIS)探测的电荷转移动力学和电容分量是与其他研究的相关性。 MnO2纳米棒和NRGO之间的正协同作用诱导更高的导电性和表面积,最终促进了优异的超级电容器和传感器性能。结果将NRGO-MNO2纳米复合材料突出显示为下一代储能和传感应用的多功能,切削刃和可持续材料。

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