Progress in Ammonia Synthesis Catalysts

Authors

  • Changsong Jin

DOI:

https://doi.org/10.54691/1k010v04

Keywords:

Ammonia; Synthetic Ammonia; Catalyst.

Abstract

Synthetic ammonia is widely used in the production processes of industrial nitric acid, ammonium salts, fertilizers, etc., playing an indirect role in promoting the development of the national economy. At the same time, as one of the basic raw materials for industrial construction and chemical development, the demand for ammonia in various related industries has also increased by tons. However, as an important participant in industrial development and the national economy, traditional synthetic ammonia often has huge energy consumption and low profitability. Therefore, research and development of synthetic ammonia catalysts have continuously emerged. This article elaborates on the research and development of synthetic ammonia catalysts, combining the latest content on the research and development of synthetic ammonia, looks forward to the trends in synthetic ammonia research and development, and provides a certain summary, in order to have a comprehensive understanding of the development and operation methods of synthetic ammonia catalysts.

Downloads

Download data is not yet available.

References

[1] Peng Jinping, Pang Yong, Li Yiping. Study on the Calculation of Regional Water Environmental Capacity in Zhanjiang City [J]. China Water Supply and Drainage, 2006, (16): 98-102.

[2] Liu Xiaobo, Peng Wenqi, He Guojian, et al. Study on the Calculation of Environmental Carrying Capacity of Fuxian Lake Based on Water Quality-Pollution Source Response Relationship [J]. Research and Progress in Hydrodynamics A Edition, 2011, 26(06):652-659.

[3] Wu X, Zhang H, Zuo S, et al. Engineering the Coordination Sphere of Isolated Active Sites to Explore the Intrinsic Activity in Single-Atom Catalysts[J]. Nano-Micro Letters,2021,13 (09): 142-169.

[4] Li Wang.Research Progress of Local Coordination Microenvironment of Single-Atom Catalysts[J]. Material Sciences, 2023.

[5] Han Ziheng. Study on the Construction and Reaction Characteristics of Tungsten-based and Vanadium-based Nitrogen Carriers in Chemical Chain Ammonia Synthesis [D]. Ningxia University, 2025.

[6] Humayun M, Ullah H, Cheng Z E, et al. Au surface plasmon resonance promoted charge transfer in Z-scheme system enables exceptional photocatalytic hydrogen evolution[J]. Applied Catalysis B: Environmental, 2022, 310:121322-.

[7] Wei Xueling, Zou Xiangyu, Bao Weiwei, et al. Preparation of FeOOH@CoNi-LDH@NF by a rapid interface method for efficient oxygen evolution [J]. Fine Chemicals, 2022(039-003).

[8] Younes, Abghoui, Anna, et al. Enabling electrochemical reduction of nitrogen to ammonia at ambient conditions through rational catalyst design. [J]. Physical chemistry chemical physics: PCCP, 2015.

[9] Xie Yu, Li Saisai, Wang Longcheng, et al. Morphology, phase, and electrochemical performance of MnCo2O4 nanostructure arrays loaded on carbon cloth [J]. Journal of Zhejiang Sci-Tech University, 2021(005):045.

[10] Hu Hongwei, Zhang Wen, Wang Yuxin. Cathodic catalytic performance of g-C3N4 and Pt/g-C3N4 in electrochemical ammonia synthesis at room temperature and atmospheric pressure [J]. Chemical Industry and Engineering, 2018.

Downloads

Published

2026-04-21

Issue

Section

Articles

How to Cite

Jin, C. (2026). Progress in Ammonia Synthesis Catalysts. Scientific Journal of Technology, 8(4), 251-255. https://doi.org/10.54691/1k010v04