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Doped ordered mesoporous carbons as novel, selective electrocatalysts for the reduction of nitrobenzene to aniline

机译:掺杂有序的中孔碳作为新型,选择性电催化剂,用于将硝基苯还原为苯胺

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摘要

Ordered mesoporous carbons (OMCs) doped with nitrogen, phosphorus or boron were synthesised through a two-step nanocasting method and studied as electrocatalysts for the reduction of nitrobenzene to aniline in a half-cell setup. The nature of the dopant played a crucial role in the electrocatalytic performance of the doped OMCs, which was monitored by LSV with a rotating disk electrode setup. The incorporation of boron generated the electrocatalysts with the highest kinetic current density, whereas the incorporation of phosphorus led to the lowest overpotential. Doping with nitrogen led to intermediate behaviour in terms of onset potential and kinetic current density, but provided the highest selectivity towards aniline, thus resulting in the most promising electrocatalyst developed in this study. Density functional theory calculations allowed explaining the observed difference in the onset potentials between the various doped OMCs, and indicated that both graphitic N and pyrdinic N can generate active sites in the N-doped electrocatalyst. A chronoamperometric experiment over N-doped OMC performed at-0.75 V vs. Fc/Fc~+ in an acidic environment, resulted in a conversion of 61% with an overall selectivity of 87% to aniline. These are the highest activity and selectivity ever reported for an electrocatalyst for the reduction of nitrobenzene to aniline, making N-doped OMC a promising candidate for the electrochemical cogeneration of this industrially relevant product and electricity in a fuel cell setup.
机译:通过两步纳米占方法合成掺杂有氮,磷或硼的有序的介孔碳(OMC),并作为电催化剂研究,用于将硝基苯还原为半电池设置中的苯胺。掺杂剂的性质在掺杂OMC的电催化性能下发挥了至关重要的作用,其通过LSV通过旋转盘电极设置监测。硼掺入具有最高动力电流密度的电催化剂,而磷的掺入导致最低的过电位。掺杂氮气在发作潜在和动力电流密度方面导致中间行为,但为苯胺提供了最高的选择性,从而导致本研究中发挥最有前途的电催化剂。密度函数理论计算允许解释各种掺杂OMCs之间的发作电位的观察差异,并表明石墨N和吡啶虫N可以在N掺杂的电催化剂中产生活性位点。在酸性环境中在-0.75V与Fc / Fc〜+上进行N掺杂OMC的计时验率实验,导致转化为61%,总选择性为87%至苯胺。这些是用于将硝基苯还原到苯胺的电催化剂的最高活性和选择性,使N-掺杂OMC成为这种工业相关产品和燃料电池设置中的电化学发电的有希望的候选者。

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