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Thin-film nanocomposites of BDD/CNT deposited on carbon fiber

机译:碳纤维沉积的BDD / CNT薄膜纳米复合材料

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The nanocomposites of porous boron-doped diamond deposited on carbon nanotubes (BDD/CNTs) present great surface area and high capacitance, making them a material of considerable interest for application in electro-chemistry. In this work, we present a new approach in which this nanocomposite is deposited on carbon fiber (CF) to increase the surface area and the capacitance comparing to the unsized CF electrode. We performed the dip-coating for catalyst deposition on CF surface. After, CNTs growth followed in a tubular reactor at 650 degrees C for 20 min, using camphor in a 200 g/L hexane solution as the carbon source. Electrostatic Self Assembly (ESA) seeding of nanodiamond (ND) went on by grafting polar groups onto CNTs surface by oxygen plasma functionalization. The seeding process was made with 4 nm diamond nanoparticles dispersed in KCI aqueous solution. The BDD films were deposited by Hot Filament Chemical Vapor Deposition (HFCVD) reactor. The authors studied the composites morphology, structure and electrochemical properties by Scanning Electron Microscopy with Field Emission Gun (FEG-SEM), Raman spectroscopy, cyclic voltammetry (CV) and electrochemical impedance spectroscopy (EIS). This new material presented larger surface area and higher capacitance compared to CF without treatment, as presented in electrochemical analysis results. The SEM micrographs showed absence of metallic particles on CNTs structure, what promoted a better quality diamond growth. (C) 2017 Elsevier B.V. All rights reserved.
机译:沉积在碳纳米管(BDD / CNT)上的多孔硼掺杂金刚石的纳米复合材料存在良好的表面积和高电容,使其成为电气化学应用相当兴趣的材料。在这项工作中,我们提出了一种新方法,其中将该纳米复合材料沉积在碳纤维(CF)上,以增加与未调整的CF电极的表面积和电容。我们在CF表面上进行了催化剂沉积的浸涂。之后,在650℃下的管状反应器中的CNTs生长持续20分钟,使用200g / L己烷溶液中的樟脑作为碳源。通过氧等离子体官能化将极性基团移植到CNTS表面上,纳米金刚胺(ND)的静电自组装(ESA)播种。使用分散在KCl水溶液中的4nM金刚石纳米粒子制备播种方法。通过热长丝化学气相沉积(HFCVD)反应器沉积BDD薄膜。作者通过扫描电子显微镜与场发射枪(FEG-SEM),拉曼光谱,循环伏安法(CV)和电化学阻抗光谱(EIS)来研究复合材料形态,结构和电化学性能。如电化学分析结果所示,与CF相比,这种新材料呈现较大的表面积和更高的电容,如电化学分析结果所示。 SEM显微照片显示CNT结构上没有金属颗粒,促进了更好的钻石生长。 (c)2017 Elsevier B.v.保留所有权利。

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