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首页> 外文期刊>International journal of hydrogen energy >MnO2 nanorod catalysts for magnesium air fuel cells: Influence of different supports
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MnO2 nanorod catalysts for magnesium air fuel cells: Influence of different supports

机译:用于镁空气燃料电池的MnO2纳米棒催化剂:不同载体的影响

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MnO2 nanorods adsorbed with different supports (non-support, carbon black, and MWCNTs) were prepared through hydrothermal method for magnesium-air fuel cells (MAFCs). The morphological characteristics of the catalysts indicate that the combination modes of nanorods and MWCNTs are parallel, cross, and bend intersect, which provide a large surface areas and enhance electron transfer process. X-ray diffraction pattern illustrates the crystal form of MnO2, and X-ray photoelectron spectroscopy reveals that the existing form of manganese is Mn4+. The ORR performance investigated using a rotating disk electrode shows that the initial reduction potential of MnO2/C and MnO2/MWCNTs in the LSV curves are -0.02 and 0.03 V vs. Hg/HgO (+0.098 V vs. NHE), respectively. The electron transfer number of MnO2/MWCNTs is 3.86, which corresponds to four electrons. In the I-t curves, the oxygen reduction current density of MnO2/MWCNTs decreases by 18.1% and MnO2/C decays by 27.9% after 60 h. The CVs reveal that the current density losses of MnO2/MWCNTs and MnO2/C are 0.4 and 0.8 mA cm(-2) after scanning for 5000 cycles. The potential values of the air electrode loaded with MnO2/C and MnO2/MWCNTs catalysts are -0.78 and -0.62 V vs. SCE, respectively, at 150 mA cm(-2), respectively. The discharge performance of a single-chamber MAFC shows that the peak power densities of MnO2/C and MnO2/MWCNTs are 60.95 and 70.47 mW cm(-2), respectively, 20 degrees C in 10 wt% NaCl solutions. The single cells of MnO2/MWCNTs can continuously discharge for more than 24 h at a current density of 20 mA cm(-2). The EIS proves that the conductivity of MnO2/MWCNTs is higher than MnO2/C. Copyright (C) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:通过水热法制备了镁-空气燃料电池(MAFC)吸附有不同载体(非载体​​,炭黑和MWCNT)的MnO2纳米棒。催化剂的形貌特征表明,纳米棒和多壁碳纳米管的结合方式是平行,交叉和弯曲相交,从而提供了较大的表面积并增强了电子转移过程。 X射线衍射图显示了MnO2的晶体形式,X射线光电子能谱显示锰的存在形式为Mn4 +。使用转盘电极研究的ORR性能表明,在LSV曲线中MnO2 / C和MnO2 / MWCNT的初始还原电位分别为-0.02和0.03 V对Hg / HgO(+0.098 V对NHE)。 MnO2 / MWCNTs的电子转移数为3.86,对应于四个电子。在I-t曲线中,MnO2 / MWCNTs的氧还原电流密度在60小时后下降了18.1%,MnO2 / C下降了27.9%。 CVs显示扫描5000个循环后MnO2 / MWCNTs和MnO2 / C的电流密度损失分别为0.4和0.8 mA cm(-2)。在150 mA cm(-2)下,负载MnO2 / C和MnO2 / MWCNTs催化剂的空气电极的电势值分别为-0.78和-0.62 V vs. SCE。单室MAFC的放电性能表明,在20 wt%的NaCl溶液中,MnO2 / C和MnO2 / MWCNT的峰值功率密度分别为60.95和70.47 mW cm(-2),在20摄氏度时。 MnO2 / MWCNTs的单个电池可以在20 mA cm(-2)的电流密度下连续放电24小时以上。 EIS证明MnO2 / MWCNTs的电导率高于MnO2 / C。 Hydrogen Energy Publications,LLC版权所有(C)2015。由Elsevier Ltd.出版。保留所有权利。

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