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首页> 外文期刊>Catalysis science & technology >Reaction pathways on N-substituted carbon catalysts during the electrochemical reduction of nitrate to ammonia
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Reaction pathways on N-substituted carbon catalysts during the electrochemical reduction of nitrate to ammonia

机译:在硝酸盐电化学还原至氨的N-取代的碳催化剂上的反应途径

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摘要

Electrochemical reduction of nitrate into ammonia is one potential strategy to valorize pollutants needed to close the nitrogen cycle. The understanding of carbonaceous materials as metal-free representatives of electrocatalysts is of high importance to ensure sufficient activity and target selectivity. We report on the role of defects in cellulose-derived nitrogen-doped carbon (NDC) materials, produced by ammonolysis at different temperatures, to obtain efficient electrocatalysts for the nitrate reduction reaction (NO3RR). Carbon catalyst ammonolysis at 800 degrees C (NDC-800) yields the highest electrochemical performance, exhibiting 73.1% NH4+ selectivity and nearly 100% NO3- reduction efficiency with a prolonged NO3RR time (48 h) at -1.5 V vs. Ag/AgCl in a 0.1 M Na2SO4 electrolyte. We provide support to our findings by undertaking complementary structural analyses with scanning electron microscopy (SEM), transmission electron microscopy (TEM), powder X-ray diffraction (PXRD), X-ray photoelectron spectroscopy (XPS), Raman spectroscopy, low-temperature N-2 adsorption, and theoretical studies based on multi-scale/level calculations. Atomistic molecular dynamics simulations based on a reactive force field combined with quantum chemistry (QC) calculations on representative model systems suggest possible realistic scenarios of the material structure and reaction mechanisms of the NO3- reduction routes.
机译:将硝酸盐的电化学还原为氨是一种策略,即在关闭氮循环所需的污染物中。将碳质材料作为电催化剂的无金属代表的理解对于确保足够的活性和目标选择性非常重要。我们报告了在不同温度下由氨解产生的缺陷在纤维素来源的氮掺杂碳(NDC)材料中的作用,以获得有效的硝酸盐还原反应(NO3RR)的有效电催化剂。在800度C(NDC-800)处的碳催化剂氨解会产生最高的电化学性能,表现出73.1%NH4+选择性,在-1.5 v vs. ag/agcl中,NO3RR时间延长(48 h)的NO3-NO3-降低效率接近100%NO3-降低效率(48 h) 0.1 m Na2SO4电解质。我们通过使用扫描电子显微镜(SEM),透射电子显微镜(TEM),粉末X射线衍射(PXRD),X射线光电学光谱(XPS),Raman光谱,低敏感性进行互补的结构分析来提供支持。 N-2的吸附和基于多尺度/水平计算的理论研究。基于反应力场以及代表性模型系统上的量子化学(QC)计算的原子分子动力学仿真提出了NO3还原途径的材料结构和反应机制的现实情况。

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