Zn–Co-MOF on solution-free CuO nanowires for flexible hybrid energy storage devices

材料科学 超级电容器 电化学 异质结 石墨烯 化学工程 电流密度 氧化物 储能 密度泛函理论 金属有机骨架 电极 纳米线 纳米技术 光电子学 冶金 物理化学 计算化学 吸附 工程类 功率(物理) 物理 化学 量子力学
作者
Iftikhar Hussain,Sarmad Iqbal,Tanveer Hussain,Wai Lok Cheung,Shakeel Ahmad Khan,Jun Zhou,Muhammad Ahmad,Shahid Ali Khan,Charmaine Lamiel,Muhammad Imran,Akram Alfantazi,Kaili Zhang
出处
期刊:Materials Today Physics [Elsevier BV]
卷期号:23: 100655-100655 被引量:93
标识
DOI:10.1016/j.mtphys.2022.100655
摘要

Pouch-type supercapacitor was developed by employing flexible Zn–Co-metal organic framework (MOF)@CuO and porous reduced graphene oxide as active electrodes. The flexible Zn–[email protected] was fabricated by a facile two-step strategy. In the first step, Cu mesh was oxidized to cupric oxide (CuO) by a solution-free treatment. In the second step, Zn–Co-MOF was deposited on CuO scaffold through a solvothermal treatment. The as-prepared integrated Zn–[email protected] exhibited excellent flexibility at different bending angles. The flexible Zn–[email protected] displayed excellent electrochemical activity during three-electrode testing due to the merits of high electrical conductivity and an existence of p-n heterojunction between CuO and Zn–Co-MOF. The as-fabricated pouch supercapacitor yielded a high energy density of 41 W h kg−1 at a current density of 1 A g−1 and an excellent cycling stability of 97% after 20,000 cycles. Structural and superior electronic properties of Zn–[email protected] were further verified through first principles calculations based on density functional theory (DFT), which perfectly supported the experimental results. The excellent electrochemical attributes of the flexible pouch supercapacitor show immense promise for next-generation electrochemical energy storage devices.
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