Zhiwen Li, Mengqiu Xu, Jiaqian Wang, Yifei Zhang, Wen Liu, Xinrui Gu, Zhong-Kang Han, Wei Ye, Gao Li
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引用次数: 0
摘要
在环境条件下通过电催化将硝酸盐和二氧化碳转化为尿素,有望替代高消耗、高污染的传统尿素合成工艺。本研究采用简单的一锅法制备了一种高效的 FeNC-Fe1N4 电催化剂,它由原子分散的 Fe1N4 位点和粒径为 4-7 纳米的金属 Fe 簇(FeNC)组成。FeNC-Fe1N4 催化剂在以硝酸阴离子(NO3 -)和二氧化碳(CO2)为原料合成尿素的过程中表现出显著的电催化活性,在 -0.9 V(相对于 RHE)电压下,尿素生产率达到 38.2 mmol gcat -1 h-1,在 -0.6 V(相对于 RHE)电压下,法拉第效率达到 66.5%。实验和理论结果均证实,金属 Fe 簇和 Fe1N4 物种分别为 NO3 - 和 CO2 的吸附和活化提供了活性位点,Fe1N4 与金属 Fe 簇之间的协同效应显著提高了尿素合成的电化学效率。总之,这项工作有助于合理设计和综合合成双活性位点铁基电催化剂,促进高效和可持续的尿素合成。
Boosting Up Electrosynthesis of Urea with Nitrate and Carbon Dioxide via Synergistic Effect of Metallic Iron Cluster and Single-Atom
Electrocatalytic conversion of nitrates and carbon dioxide to urea under ambient conditions shows promise as a potential substitute for traditional urea synthesis processes characterized by high consumption and pollution. In this study, a straightforward one-pot method is employed to prepare a highly efficient FeNC-Fe1N4 electrocatalyst, consisting of atomically dispersed Fe1N4 sites and metallic Fe clusters (FeNC) with particle size of 4–7 nm. The FeNC-Fe1N4 catalyst exhibits remarkable electrocatalytic activity for urea synthesis from nitrate anion (NO3−) and carbon dioxide (CO2), achieving a urea production rate of 38.2 mmol gcat−1 h−1 at −0.9 V (vs RHE) and a Faradaic efficiency of 66.5% at −0.6 V (vs RHE). Both experimental and theoretical results conclusively demonstrate that metallic Fe clusters and Fe1N4 species provide active sites for the adsorption and activation of NO3− and CO2, respectively, and the synergistic effect between Fe1N4 and metallic Fe clusters significantly enhances the electrochemical efficiency of urea synthesis. In all, this work contributes to the rational design and comprehensive synthesis of a dual-active site iron-based electrocatalyst, facilitating efficient and sustainable urea synthesis.
期刊介绍:
Small serves as an exceptional platform for both experimental and theoretical studies in fundamental and applied interdisciplinary research at the nano- and microscale. The journal offers a compelling mix of peer-reviewed Research Articles, Reviews, Perspectives, and Comments.
With a remarkable 2022 Journal Impact Factor of 13.3 (Journal Citation Reports from Clarivate Analytics, 2023), Small remains among the top multidisciplinary journals, covering a wide range of topics at the interface of materials science, chemistry, physics, engineering, medicine, and biology.
Small's readership includes biochemists, biologists, biomedical scientists, chemists, engineers, information technologists, materials scientists, physicists, and theoreticians alike.