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首页> 外文期刊>Electrochimica Acta >Fabrication of MnO2/carbon micro/nanostructures based on Carbon-MEMS technique on stainless steel substrate for supercapacitive microelectrodes
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Fabrication of MnO2/carbon micro/nanostructures based on Carbon-MEMS technique on stainless steel substrate for supercapacitive microelectrodes

机译:基于碳-MEMS技术的MnO2 /碳微/纳米结构的制造超级电容微电极的不锈钢基板

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Fabrication of carbon micro/nanostructures by carbon microelectromechanical systems (carbon-MEMS) technique on conductive substrate stably is of great significance but difficulty, for the poor adhesive property and low - temperature resistance of the substrate. In this study, three-dimensional carbon micro/nanostructures are fabricated on stainless steel (SS) substrate for the first time by carbon-MEMS technique and oxygen plasma etching process without extra conductive layer fabrication process. The effects of oxygen plasma etching time and the height of photoresist array on the morphologies of carbon micro/nanostructures are investigated. The carbon micro/nanostructures were then electrodeposited with manganese dioxide (MnO2) thin film as microelectrodes for supercapacitors, and the electrochemical performances of the microelectrodes were demonstrated. At the current density of 0.05 mAcm(-2), the MnO2/carbon micro/nanostructures microelectrode deposited with 5min show a large specific capacitance of 453.47 F g(-1). It also shows excellent long-term cycling stability of-94% capacitance retention even after 6000 cycling tests. This study shows that the MnO2/carbon micro/nanostructures microelectrodes have great potential for supercapacitors as micro-energy storage devices, and the proposed approach of fabricating carbon hierarchical micro/nanostructures array on a conductive substrate is promising for large-scale micro/nanostructures manufacturing. (c) 2019 Elsevier Ltd. All rights reserved.
机译:碳微制造/碳微机电系统的纳米结构(碳MEMS)导电性基板上稳定地技术具有重大的意义,但困难,对于穷人粘合性和低 - 衬底的耐热性。在这项研究中,三维炭微/纳米结构被制造在不锈钢(SS)基底首次通过碳 - MEMS技术和氧的等离子体蚀刻过程而无需额外的导电层的制造工艺。氧等离子体蚀刻时间和在碳上的微的形貌光刻胶阵列的高度的效果/纳米结构进行了研究。碳微/纳米结构,然后用二氧化锰(MnO)薄膜作为微电极超级电容器电沉积,和微电极的电化学性能进行了论证。在0.05 MACM(-2),二氧化锰/碳微的电流密度/纳米结构微电极沉积有5分钟的显示453.47 F G大的比电容(-1)。它也显示了即使经过6000次循环测试的-94%的电容保持优异的长期循环稳定性。这项研究表明,二氧化锰/碳微/纳米结构的微电极具有用于超级电容器作为微储能装置很大的潜力,并在导电衬底上制造碳分层微/纳米结构阵列是有希望用于大规模微的提议的方法/纳米结构的制造。 (c)2019 Elsevier Ltd.保留所有权利。

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