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CNT Interwoven Cu-MOF: A Synergistic Electrochemical Approach for Solid-State Supercapacitor and Hydrogen Evolution Reaction

超级电容器 过电位 复合数 材料科学 化学工程 电化学 电容 金属有机骨架 双功能 纳米技术 电极 复合材料 催化作用 化学 有机化学 物理化学 工程类 吸附
作者
Mayank K. Singh,Sarathkumar Krishnan,Khushwant Singh,K. Dhirendra
出处
期刊:Energy & Fuels [American Chemical Society]
卷期号:38 (13): 12098-12110 被引量:8
标识
DOI:10.1021/acs.energyfuels.4c00811
摘要

Considering climate issues resulting from the burning of fossil fuels, the synthesis of cost-effective extensive electrodes for electrochemical energy storage and green hydrogen generation is one of the frontier research areas to sustainably meet current energy demand. Herein, a facile synthesis of a novel composite material (MC) consisting of copper-based metal–organic frameworks (Cu-MOFs) (M) interwoven with carbon nanotubes (CNTs) (C). The MC composite has been designed for bifunctional application as a high-performance solid-state supercapacitor electrode and for catalyzing hydrogen evolution reaction (HER). The Cu-MOF (M) is synthesized using a solvothermal technique, which, upon simple ultrasonication with activated CNTs, affords the Cu-MOF/CNT composite (MC). The coordinative interactions between carboxylate groups of CNTs with Cu (II) centers of Cu-MOF ensure a firm anchorage of two components, leading to a robust composite. Cu-MOF (M), with a suitable channel structure, offers a large number of accessible redox-active centers, while CNTs (C) provide a conductive network throughout the composite, enabling efficient charge transport and improved electrical conductivity. The calculated specific capacitance of the MC composite shows a value of 348.62 Fg–1 at 1 Ag–1 with a high-rate capability. Furthermore, to enhance practical usability, a symmetrical device has been constructed, achieving an energy density of 27.7 Wh kg–1 and a power density of 1.64 kW kg–1. The observed retention in capacitance is 90.15% after 10000 cycles. Moreover, the MC composite exhibited remarkable electrocatalytic activity for the HER, demonstrating an overpotential of 192 mV vs RHE at 10 mA cm–2, along with a Tafel slope of 129 mV dec–1. The dual functionality of the Cu-MOF (M) interwoven CNT (MC) composite as a high-performance solid-state supercapacitor and an efficient electrocatalyst for HER opens up opportunities for integrated energy storage and conversion devices.

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