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CuO/Graphene Nanocomposite for Nitrogen Reduction Reaction

机译:CuO /石墨烯纳米复合物用于氮还原反应

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摘要

Electrochemical conversion of N-2 to NH3 offers a clean and energy-saving solution for artificial NH3 production, but requires cost-effective, steady and highly efficient catalysts to promote N-2 reduction reaction (NRR). Herein, CuO employed as a new non-noble-metal NRR catalyst was investigated both experimentally and theoretically. When supporting the CuO nanoparticles on reduced graphene oxide (RGO), it was demonstrated that the resulting CuO/RGO nanocomposite could effectively and robustly catalyze NRR under ambient conditions. At -0.75 V versus reversible hydrogen electrode, the CuO/RGO exhibited a high NH3 yield of 1.8x10(-10) mol s(-1) cm(-2) and Faradaic efficiency of 3.9 %, along with the excellent selectivity and high stability. Density functional theory (DFT) calculations revealed that the "Suf-end" was the most effective mode for N-2 adsorption on catalytic Cu atoms. In NRR process, the alternating associative route was the preferable pathway with *N-2 ->*NNH being the rate-determining step.
机译:N-2至NH3的电化学转化为人工NH3生产提供了清洁节能的解决方案,但需要具有成本效益,稳定和高效的催化剂来促进N-2还原反应(NRR)。在此,在实验和理论上研究了作为新的非贵金属NRR催化剂的CuO。当在低碳氧化物(RGO)上支持CuO纳米颗粒时,证明所得CuO / Rgo纳米复合材料可以在环境条件下有效且鲁棒地催化NRR。在-0.75V与可逆氢电极,CuO / Rgo的高NH 3产率为1.8×10(-10)厘米(-1)cm(-2)和3.9%的游览效率,以及优异的选择性和高稳定。密度函数理论(DFT)计算显示,“SUF-END”是最有效的N-2对催化Cu原子吸附的模式。在NRR工艺中,交替的缔联途径是具有* N-2 - > * NNH的优选途径是速率确定步骤。

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