氧化锰和石墨烯-氧化锰薄膜的生长和物理化学特性,在储能设备中的潜在应用

J.A. Arévalo , J.E. Alfonso , O.J. Suarez , J.J. Olaya , L.C. Moreno-Aldana
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引用次数: 0

摘要

电池和大型电容器等能源供应设备的发展需要进步,这就要求对这些设备进行改进和创新,使其能够有效地储存能量,此外,这些设备还必须体积小、重量轻、生产成本低、对环境友好。因此,本研究对石墨烯-氧化锰、铜和氧化锰-铜系统的物理和化学特性进行了研究。石墨烯是通过电化学剥离技术合成的,并通过喷雾技术在普通玻璃和硅基底上沉积成膜,然后通过旋涂技术在该膜上沉积 Mn2O3 膜。拉曼分析结果表明,存在峰值 D 和 G,分别位于 1534 和 1597 cm-1。XPS 分析表明石墨烯由三层组成。TEM 研究确定石墨烯是多晶体,XRD 确定氧化锰涂层沿着 Mn2O3 的 (222) 和 (440) 平面生长。光学行为表明,与 Mn2O3 薄膜相比,石墨烯-Mn2O3 系统的吸光度降低了 0.8 eV 的能隙。电压-电流测量结果表明,Mn2O3-Cu 电极体系放电过程中的密度电流比石墨烯-Mn2O3-Cu 电极体系提高了约 3 倍。结果表明,在氧化锰涂层中添加石墨烯可提高其电化学性能,因此石墨烯-氧化锰可用于储能设备。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Growth and physical-chemical characterization of manganese oxide and graphene-manganese oxide films for potential applications in energy store devices

The need for progress in the development of energy supply devices such as batteries and large capacitors has led to the improvement and innovation of these devices so that they can store energy efficiently, and additionally, they must be small, light, with low production costs, and friendly to the environment. For these reasons, in this investigation results of the characterization of physical and chemical behaviors of graphene-manganese oxide and copper and manganese oxide-copper systems are studied. The graphene was synthesized through the electrochemical exfoliation technique and deposited as a film on common glass and silicon substrates via the spray technique, and over this film, Mn2O3 films were deposited through spin coating. The Raman results showed the presence of peaks D and G, located at 1534 and 1597 cm−1, respectively. XPS analysis demonstrated that the graphene is made up of three layers. TEM studies determined that the graphene is polycrystalline, and XRD established the manganese oxide coatings’ growth along the (222) and (440) planes of Mn2O3. The optical behavior indicated that the absorbance of the graphene-Mn2O3 system decreases the energy gap in 0.8 eV concerning Mn2O3 films. The voltage-current measurements suggest that the density current in the discharge process of the Mn2O3–Cu electrode system was improved approximately 3-fold with the graphene-Mn2O3–Cu electrode system. The obtained results conclude that the addition of graphene to manganese oxide coatings increases their electrochemical performance, so graphene-manganese oxide could be used in energy storage devices.

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