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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Facile preparation of porous carbons derived from orange peel via basic copper carbonate activation for supercapacitors
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Facile preparation of porous carbons derived from orange peel via basic copper carbonate activation for supercapacitors

机译:通过碱性剥离衍生自碳酸铜活化的超级电容器的碳酸多孔碳的容纳碳

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A facile activation method has been illustrated for the synthesis of porous carbons derived from orange peels using basic copper carbonate as activation agent. The resulting carbon material possesses a high specific surface area of 912.4 m(2) g(-1), hierarchical pore architecture with interconnected meso-/macropores, and a rich amount of nitrogen, oxygen and sulfur heteroatoms. Benefiting from to its unique pore structure and the co-existence of redox-active nitrogen, oxygen and sulfur functionalities, the obtained porous carbon shows outstanding electrochemical performance when used as electrode material for supercapacitors. The as-prepared porous carbon exhibits a high specific capacitance of 375.7 F g(-1) at 1 A g(-1) and good rate retention of 50.9% from 1 to 100 A g(-1). Additionally, the assembled carbon-based symmetric supercapacitor delivers a high energy density of 31.3 W h kg(-1) at a power density of 499.5 W kg(-1) in 1.0 M Na2SO4 electrolyte as well as superior long-term cyclic stability (only 7.3% of capacitance loss after 50,000 cycles within a voltage window of 0-2.0 V). This work provides an easy and feasible way for the synthesis of hierarchical porous carbon materials with both high power and energy density. (C) 2020 Elsevier B.V. All rights reserved.
机译:已经说明了一种容易激活方法,用于使用碱性碳酸盐作为活化剂来合成衍生自橙皮的多孔碳。所得碳材料具有912.4m(2 )g(-1)的高比表面积,具有相互连接的中/大孔的分层孔结构,以及丰富的氮,氧和硫杂原子。受益于其独特的孔结构和氧化还原活性氮,氧和硫官能团的共存,所得多孔碳显示出卓越的电化学性能,当用作超级电容器的电极材料时。制备的多孔碳在1Ag(-1)下具有375.7fg(-1)的高比电容,良好的速率保留50.9%从1至100ag(-1)。另外,组装的碳基对称超级电容器以1.0M Na 2 SO 4电解质为单位为499.5W kg(-1)的功率密度,提供高能量密度为31.3Wh kg(-1),以及优异的长期环状稳定性(在0-2.0V的电压窗口内仅50,000个循环后的电容损失的7.3%)。这项工作为合成具有高功率和能量密度的分层多孔碳材料提供了一种简单可行的方式。 (c)2020 Elsevier B.v.保留所有权利。

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