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Merging of Kirkendall Growth and Ostwald Ripening: CuO@MnO2 Core-shell Architectures for Asymmetric Supercapacitors

机译:Kirkendall生长和奥斯特瓦尔德成熟的合并:非对称超级电容器的CuO @ MnO2核壳结构

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摘要

Fabricating hierarchical core-shell nanostructures is currently the subject of intensive research in the electrochemical field owing to the hopes it raises for making efficient electrodes for high-performance supercapacitors. Here, we develop a simple and cost-effective approach to prepare CuO@MnO2 core-shell nanostructures without any surfactants and report their applications as electrodes for supercapacitors. An asymmetric supercapacitor with CuO@MnO2 core-shell nanostructure as the positive electrode and activated microwave exfoliated graphite oxide (MEGO) as the negative electrode yields an energy density of 22.1 Wh kg−1 and a maximum power density of 85.6 kW kg−1; the device shows a long-term cycling stability which retains 101.5% of its initial capacitance even after 10000 cycles. Such a facile strategy to fabricate the hierarchical CuO@MnO2 core-shell nanostructure with significantly improved functionalities opens up a novel avenue to design electrode materials on demand for high-performance supercapacitor applications.
机译:由于希望将其制造成用于高性能超级电容器的有效电极,因此制造分层的核-壳纳米结构目前是电化学领域中深入研究的主题。在这里,我们开发了一种简单且经济高效的方法来制备不含任何表面活性剂的CuO @ MnO2核壳纳米结构,并报告了它们作为超级电容器电极的应用。以CuO @ MnO2核壳纳米结构为正电极,活化微波剥落型氧化石墨(MEGO)为负电极的不对称超级电容器,其能量密度为22.1 Wh kg -1 ,最大功率密度85.6 kW kg -1 ;该器件显示出长期的循环稳定性,即使经过10000次循环,仍可保持其初始电容的101.5%。这种简便的制造具有显着改善的功能的CuO @ MnO2核-壳纳米结构的策略为开发高性能超级电容器应用所需的电极材料开辟了一条新途径。

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