论文标题

单原子催化剂增强氮电还原反应

Single-atom catalysts boost nitrogen electroreduction reaction

论文作者

Zhai, Yanling, Zhu, Zhijun, Zhu, Chengzhou, Chen, Kyle, Zhang, Xueji, Tang, Jing, Chen, Jun

论文摘要

氨(NH3)主要是通过传统的Haber-Bosch工艺在恶劣的条件下产生的,具有巨大的能耗和巨大的二氧化碳(CO2)排放。在环境条件下,将氮(N2)转化为NH3的氮电量反应(NERR)被视为Haber-Bosch工艺的有希望的替代方法,并且近年来已经获得了巨大的兴趣。尽管已经取得了一些激动人心的进步,但在提高NH3的收益率和法拉第效率方面仍然存在相当大的科学和技术挑战,了解反应的机制并促进NERR的广泛商业化。单原子催化剂(SAC)由于其原子分散活性位点而成为有前途的催化剂,并最大化原子效率,不饱和协调环境及其独特的电子结构,这可以显着提高NH3的反应速率和成本率。在这篇综述中,我们简要介绍了SAC的独特结构和电子特征,这有助于全面地了解其结构简单性和多样性,从而加快了原子量表的奇妙催化剂的合理设计。然后,我们总结了最新的实验和计算工作,以开发具有出色NERR性能的新型SAC,包括珍贵金属,非胸部金属和非金属的SAC。最后,我们提出了SAC对NERR的挑战和观点,以及高级NERR催化剂的一些潜在手段。

Ammonia (NH3) is mainly produced through the traditional Haber-Bosch process under harsh conditions with huge energy consumption and massive carbon dioxide (CO2) emission. The nitrogen electroreduction reaction (NERR), as an energy-efficient and environment-friendly process of converting nitrogen (N2) to NH3 under ambient conditions, has been regarded as a promising alternative to the Haber-Bosch process and has received enormous interest in recent years. Although some exciting progress has been made, considerable scientific and technical challenges still exist in improving the NH3 yield rate and Faradic efficiency, understanding the mechanism of the reaction and promoting the wide commercialization of NERR. Single-atom catalysts (SACs) have emerged as promising catalysts because of its atomically dispersed activity sites and maximized atom efficiency, unsaturated coordination environment, and its unique electronic structure, which could significantly improve the rate of reaction and yield rate of NH3. In this review we briefly introduce the unique structural and electronic features of SACs, which contributes to comprehensively understand the reaction mechanism owing to their structural simplicity and diversity, and in turn expedite the rational design of fantastic catalysts at the atomic scale. Then, we summarize the most recent experimental and computational efforts on developing novel SACs with excellent NERR performance, including precious metal-, nonprecious metal- and nonmetal-based SACs. Finally, we present challenges and perspectives of SACs on NERR, as well as some potential means for advanced NERR catalyst.

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