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多维结构优化与调控机制探索:电化学合成氨中的催化剂与反应环境

Exploration of Multidimensional Structural Optimization and Regulation Mechanisms: Catalysts and Reaction Environments in Electrochemical Ammonia Synthesis.

作者信息

Chu Kaibin, Weng Bo, Lu Zhaorui, Ding Yang, Zhang Wei, Tan Rui, Zheng Yu-Ming, Han Ning

机构信息

School of Materials Science and Engineering, Linyi University, Linyi, 276000, P. R. China.

State Key Laboratory of Advanced Environmental Technology, Institute of Urban Environment, Chinese Academy of Sciences, 1799 Jimei Road, Xiamen, 361021, P. R. China.

出版信息

Adv Sci (Weinh). 2025 Mar;12(11):e2416053. doi: 10.1002/advs.202416053. Epub 2025 Jan 31.

Abstract

Ammonia (NH) is esteemed for its attributes as a carbon-neutral fuel and hydrogen storage material, due to its high energy density, abundant hydrogen content, and notably higher liquefaction temperature in comparison to hydrogen gas. The primary method for the synthetic generation of NH is the Haber-Bosch process, involving rigorous conditions and resulting in significant global energy consumption and carbon dioxide emissions. To tackle energy and environmental challenges, the exploration of innovative green and sustainable technologies for NH synthesis is imperative. Rapid advances in electrochemical technology have created fresh prospects for researchers in the realm of environmentally friendly NH synthesis. Nevertheless, the intricate intermediate products and sluggish kinetics in the reactions impede the progress of green electrochemical NH synthesis (EAS) technologies. To improve the activity and selectivity of the EAS, which encompasses the electrocatalytic reduction of nitrogen gas, nitrate, and nitric oxide, numerous electrocatalysts and design strategies have been meticulously investigated. Here, this review primarily delves into recent progress and obstacles in EAS pathways, examining methods to boost the yield rate and current efficiency of NH synthesis via multidimensional structural optimization, while also exploring the challenges and outlook for EAS.

摘要

氨(NH₃)因其作为碳中性燃料和储氢材料的特性而受到重视,这是由于其能量密度高、氢含量丰富,并且与氢气相比液化温度明显更高。合成氨的主要方法是哈伯-博施法,该过程需要严格的条件,导致全球能源消耗巨大和二氧化碳排放显著。为应对能源和环境挑战,探索创新的绿色可持续氨合成技术势在必行。电化学技术的快速发展为环境友好型氨合成领域的研究人员带来了新的前景。然而,反应中复杂的中间产物和缓慢的动力学阻碍了绿色电化学氨合成(EAS)技术的进展。为提高涵盖氮气、硝酸盐和一氧化氮电催化还原的EAS的活性和选择性,人们对众多电催化剂和设计策略进行了细致研究。在此,本综述主要深入探讨EAS途径的最新进展和障碍,研究通过多维结构优化提高氨合成产率和电流效率的方法,同时也探讨EAS面临的挑战和前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/da4f/11923998/b629e6f740dd/ADVS-12-2416053-g001.jpg

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