通过一步热氧化柔性铜网制备用于超级电容器的 Cu2O/CuO 纳米线

Mina-Ionela Morariu (Popescu), M. Nicolaescu, I. Hulka, N. Duțeanu, Corina Orha, C. Lăzău, Cornelia Bandas
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引用次数: 0

摘要

本研究的重点是在 300 至 600 °C 的氧化温度范围内,在受控的 Ar 和 O2 混流气氛中,使用柔性铜网通过一步热氧化法生长 Cu2O/CuO 纳米线。热氧化法是在金属表面获得纳米线的最简单方法之一,具有生产成本低、无需使用有害化合物即可大规模生产金属氧化物等优点。事实证明,在导电基底上生长金属氧化物,形成金属/氧化物结构,是提高电荷转移效率的有效方法。利用 XRD 和 SEM/EDX 分析等技术对合成的 Cu/Cu2O/CuO (Nw) 电极进行了结构和形态表征,以研究材料的结构修饰和形态。然后使用循环伏安法(CV)、电静态充放电(GCD)测量法和电化学阻抗光谱法(EIS)检验了所开发的 Cu/Cu2O/CuO (Nw) 电极的超级电容器特性。CV 曲线显示,Cu/Cu2O/CuO (Nw) 结构起着正极的作用,在 5 mV s -1 的扫描速率下,在 300 °C 温度下氧化的电极的最高电容值达到 26.158 mF cm-2。在不同的弯曲角度(包括 0°、45°、90°、135° 和 180°)下对电极的柔韧性进行了评估。GCD 分析表明,在氧化温度为 300 ℃、功率密度为 0.5 mA cm-2 的低温条件下,最大比电容为 21.198 mF cm-2。通过 GCD 分析,对获得的所有 Cu/Cu2O/CuO (Nw) 电极进行了 500 次循环寿命评估,证实了它们的电化学稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fabrication of Cu2O/CuO Nanowires by One-Step Thermal Oxidation of Flexible Copper Mesh for Supercapacitor Applications
This study focuses on the growth of Cu2O/CuO nanowires by one-step thermal oxidation using a flexible copper mesh at oxidation temperatures in the range of 300 to 600 °C in a controlled atmosphere of mixed-flow Ar and O2 gases. Thermal oxidation is one of the simplest used methods to obtain nanowires on a metal surface, offering advantages such as low production costs and the ability to produce metal oxides on a large scale without the use of hazardous chemical compounds. The growth of metal oxides on a conductive substrate, forming metal/oxide structures, has proven to be an effective method for enhancing charge-transfer efficiency. The as-synthesized Cu/Cu2O/CuO (Nw) electrodes were structurally and morphologically characterized using techniques such as XRD and SEM/EDX analysis to investigate the structure modification and morphologies of the materials. The supercapacitor properties of the as-developed Cu/Cu2O/CuO (Nw) electrodes were then examined using cyclic voltammetry (CV), galvanostatic charge–discharge (GCD) measurements, and electrochemical impedance spectroscopy (EIS). The CV curves show that the Cu/Cu2O/CuO (Nw) structure acts as a positive electrode, and, at a scan rate of 5 mV s −1, the highest capacitance values reached 26.158 mF cm−2 for the electrode oxidized at a temperature of 300 °C. The assessment of the flexibility of the electrodes was performed at various bending angles, including 0°, 45°, 90°, 135°, and 180°. The GCD analysis revealed a maximum specific capacitance of 21.198 mF cm−2 at a low power density of 0.5 mA cm−2 for the oxidation temperature of 300 °C. The cycle life assessment of the all of the as-obtained Cu/Cu2O/CuO (Nw) electrodes over 500 cycles was performed by GCD analysis, which confirmed their electrochemical stability.
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