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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 >Waste tissue papers templated highly porous Mn3O4 hollow microtubes prepared via biomorphic method for pseudocapacitor applications
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Waste tissue papers templated highly porous Mn3O4 hollow microtubes prepared via biomorphic method for pseudocapacitor applications

机译:废纸纸模板化高度多孔Mn3O4中空微管,通过生物晶体方法制备,用于假偶联剂应用

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The electrode materials with large surface area and high porosity are predominant to enable the energy storage properties of electrochemical supercapacitors. Herein, lab-waste tissue paper templated trimanganese tetroxide hollow microtubes (Mn3O4 HMTs) with high porosity on their walls were synthesized via a facile biomorphic method. Initially, aqueous manganese precursor was impregnated onto the surface of cellulose fibers by means of evaporation of water molecules. After thermal treatment under ambient atmosphere, the cellulose fibers were removed, which led to the formation of Mn3O4 HMTs. The morphology, crystallinity and surface area of the prepared Mn3O4 HMTs were examined by FE-SEM, XRD and BET analyses. When tested in aqueous alkaline electrolyte, the as-prepared Mn3O4 HMTs delivered a maximum specific capacitance of 51.7 F g(-1) at the current density of 1 mA cm(-2) with good rate capability of 64.6% at high current density of 10 mA cm(-2), which is due to the high porosity that enables an effective penetration of electrolyte ions. After 2000 cycles, the porous Mn3O4 HMTs demonstrated good cycling stability of 57.1% at a current density of 5 mA cm(-2). This facile method for the preparation of hollow structured materials could provide a deep insight into novel pseudocapacitive materials. (C) 2018 Elsevier B.V. All rights reserved.
机译:具有大表面积和高孔隙率的电极材料是使电化学超级电容器的能量储存性能的主导材料。这里,通过体系的生物方法合成具有高孔隙率的实验室废物纸纸模板化束甘蓝烷基吡烷锭中空微管(MN3O4 HMTS)。最初,通过蒸发水分子蒸发锰前体水溶液浸渍到纤维素纤维表面上。在环境气氛下热处理后,除去纤维素纤维,从而导致形成MN3O4 HMTS。通过Fe-SEM,XRD和BET分析检查制备的MN3O4 HMT的形态,结晶度和表面积。当在碱性电解质中测试时,所制备的MN3O4 HMT在电流密度为1mAcm(-2)的电流密度下,高电流密度为64.6%的最大特异性电容10 mA cm(-2),这是由于能够有效渗透电解质离子的高孔隙率。在2000次循环后,多孔Mn3O4 HMTS在5mA cm(-2)的电流密度下显示出良好的循环稳定性57.1%。这种用于制备中空结构材料的容纳方法可以提供深入的洞察新的伪消约材料。 (c)2018年elestvier b.v.保留所有权利。

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