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A High-Performance Asymmetric Supercapacitor Achieved by Surface-Regulated MnO2 and Organic-Framework–derived N-doped Carbon Cloth

J. Li, S. Luo, G. Liu, J. Wan, J. Lu, B. Li,X. Han,C. Hu

Materials Today Chemistry(2021)

Cited 12|Views6
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Abstract
It is possible to achieve high energy density and power density simultaneously for asymmetric super-capacitors by using pseudocapacitive materials with abundant ion intercalation/de-intercalation sites on the surface. Herein, a positive electrode based on feather-like MnO2 anchored on the activated carbon cloth is prepared, in which oxygen-enriched MnO2 nanorods with a radial sheet-like structure (OMO@AC) further form via electrochemical oxidation. Because of the large contact area with electrolyte and abundant oxidation functional groups on its surface, the OMO@AC displays excellent capacitance of 3,160 mF/cm(2) at 1 mA/cm(2). For the nitrogen-doped active carbon negative electrode, the capacitance is up to 1,875 mF/cm(2) at 4 mA/cm(2) due to the increase in disorder and defect on the carbon surface by N-doping. Furthermore, we verify the good electrochemical activity on the OMO@AC electrode surface by first-principles calculations and confirm the good matching degree between the positive and negative electrodes by CV testes. The aqueous oxygen-enriched MnO2//nitrogen-doped active carbon asymmetric supercapacitor exhibits an ultrahigh energy density of 8.723 mWh/cm(3) at a power density of 14.248 mW/cm(3) and display excellent cycle stability maintaining 95.5% after 10,000 cycles. The facile synthesis method and excellent performance provide a feasible way for the preparation of high-performance electrode materials for energy storage devices. (C) 2021 Elsevier Ltd. All rights reserved.
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Key words
Activated carbon cloth,Energy storage devices,Three-dimensional MnO2
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