Related Experiment Video
Updated: Jul 10, 2026

Electrochemically and Bioelectrochemically Induced Ammonium Recovery
Published on: January 22, 2015
Green electrosynthesis of nitric acid/nitrate via NO/N2 electrocatalytic oxidation: a sustainable route for nitrogen
Wei Guo1, Dan Yu2, Zhenlin Mo1
1College of Resources and Environmental Engineering, Key Laboratory of Kast Georesources and Environment, Ministry of Education, Guizhou Provincial Key Laboratory for Prevention and Control of Emerging Contaminants, Guizhou University, Guiyang 550025, China. jbliu@gzu.edu.cn.
Abstract:
This review comprehensively summarizes the research progress in the electro-catalytic oxidation of nitrogen oxides (NO) and nitrogen gas (N2) to produce nitric acid/nitrate. In response to the global imbalance in the nitrogen cycle and the problem of NO pollution, the traditional high-energy consumption ammonia oxidation (Haber-Ostwald process) technology and end-of-pipe treatment techniques have limitations such as resource waste and secondary pollution. However, electro-catalytic technology can directly convert NO or N2 into high-value nitric acid/nitrate under mild conditions, achieving the resource utilization of pollutants and providing a new approach for building a low-carbon nitrogen cycle system. This review elaborates on the thermodynamic basis, reaction mechanism, and key performance indicators of electro-synthesis of nitric acid/nitrate, focuses on summarizing the design strategies and latest progress in noble metal, non-noble metal, and non-metal catalysts, discusses the electrolyte effect, electrolytic cell structure optimization, and challenges in actual flue gas treatment, and introduces the role of in situ characterization and theoretical calculation in mechanism research. Meanwhile, this paper points out that electrochemical synthesis technology has broad prospects in distributed nitric acid production, industrial flue gas resource recovery, and renewable energy storage, but still needs to overcome problems such as catalyst stability, system adaptability, and engineering scaling. Finally, this paper clearly proposes future comprehensive and sustainable research priorities, including the development of high-performance catalysts, in-depth exploration of reaction mechanisms, promoting system engineering innovation, and achieving interdisciplinary integration.
More Related Videos
Related Concept Videos
1° Amines to Diazonium or Aryldiazonium Salts: Diazotization with NaNO2 Overview
The nitrous acid is unstable. Hence, it is formed in situ from a solution of sodium nitrite and cold aqueous acids such as hydrochloric or sulfuric acid. In an acidic solution, the –OH group of nitrous acid undergoes protonation to give oxonium ion, followed by water loss...
2° Amines to N-Nitrosamines: Reaction with NaNO2
Electrophilic Aromatic Substitution: Nitration of Benzene
1° Amines to Diazonium or Aryldiazonium Salts: Diazotization with NaNO2 Mechanism
Preparation of Amines: Reduction of Oximes and Nitro Compounds
Though catalytic hydrogenation can reduce nitrobenzenes, the reduction is nonselective in the presence of other functional groups. For instance, if nitrobenzene contains an aldehyde group,...
Nitriles to Carboxylic Acids: Hydrolysis

