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Amorphous Molybdenum Sulfide on Graphene-Carbon Nanotube Hybrids as Highly Active Hydrogen Evolution Reaction Catalysts

机译:石墨烯-碳纳米管杂化物上的非晶态硫化钼作为高活性氢析出反应催化剂

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In this study, we report on the deposition of amorphous molybdenum sulfide (MOSx, with x approximate to 3) on a high specific surface area conductive support of Graphene-Carbon Nanotube hybrids (GCNT) as the Hydrogen Evolution Reaction (HER) catalysts. We found that the high surface area GCNT electrode could support the deposition of MoSx at much higher loadings compared with simple porous carbon paper or flat graphite paper. The morphological study showed that MoSx was successfully deposited on and was in good contact with the GCNT support. Other physical characterization techniques suggested the amorphous nature of the deposited MoSx. With a typical catalyst loading of 3 mg cm(-2), an overpotential of 141 mV was required to obtain a current density of 10 mA cm(-2). A Tafel slope of 41 mV decade(-1) was demonstrated. Both measures placed the MoSx-deposited GCNT electrode among the best performing molybdenum sulfide-based HER catalysts reported to date. The electrode showed a pod stability with only a 25 mV increase in overpotential required for a current density of 10 mA cm(-2), after undergoing 500 potential sweeps with vigorous bubbling present. The current density obtained at -0.5 V vs SHE (Standard Hydrogen Electrode potential) decreased less than 10% after the stability test. The deposition of MoSx on high specific surface area conductive electrodes demonstrated to be an efficient method to maximize the catalytic performance toward HER.
机译:在这项研究中,我们报道了作为氢析出反应(HER)催化剂的石墨烯-碳纳米管杂化体(GCNT)的高比表面积导电载体上的非晶态硫化钼(MOSx,x约等于3)的沉积。我们发现,与简单的多孔碳纸或扁平石墨纸相比,高表面积的GCNT电极可以在更高的负载下支持MoSx的沉积。形态学研究表明,MoSx成功沉积在GCNT载体上并与GCNT载体良好接触。其他物理表征技术表明沉积的MoSx的非晶态性质。在3 mg cm(-2)的典型催化剂负载下,需要141 mV的过电势才能获得10 mA cm(-2)的电流密度。 Tafel斜率为41 mV十年(-1)。两项措施均将MoSx沉积的GCNT电极置于迄今为止报道的性能最佳的基于硫化钼的HER催化剂之中。在经历500次电势扫描并出现剧烈起泡之后,该电极显示出荚果稳定性,仅10 m cm(-2)电流密度所需的过电势仅增加25 mV。稳定性测试后,在-0.5 V vs. SHE(标准氢电极电势)下获得的电流密度降低了不到10%。 MoSx在高比表面积导电电极上的沉积被证明是使对HER的催化性能最大化的有效方法。

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