Wang Yuting, Wang Changhong, Li Mengyang, Yu Yifu, Zhang Bin
Department of Chemistry, School of Science, Institute of Molecular Plus, Tianjin University, Tianjin 300072, China.
Chem Soc Rev. 2021 Jun 21;50(12):6720-6733. doi: 10.1039/d1cs00116g. Epub 2021 May 10.
Excessive nitrate ions in the environment break the natural nitrogen cycle and become a significant threat to human health. So far, many physical, chemical, and biological techniques have been developed for nitrate remediation, but most of them require high post-processing costs and rigorous treatment conditions. In contrast, nitrate electroreduction is promising because it utilizes green electrons as reductants under ambient conditions. The recognition and mastering of the nitrate reaction mechanism is the premise for the design and synthesis of efficient electrocatalysts for the selective reduction of nitrate. In this regard, this review aims to provide an insight into the electrocatalytic mechanism of nitrate reduction, especially combined with in situ electrochemical characterization and theoretical calculations over different kinds of materials. Moreover, the performance evaluation parameters and standard test methods for nitrate electroreduction are summarized to screen efficient materials. Finally, an outlook on the current challenges and promising opportunities in this research area is discussed. This review provides a guide for development of electrocatalysts for selective nitrate reduction with a fascinating performance and accelerates the development of sustainable nitrogen chemistry and engineering.
环境中过量的硝酸根离子破坏了自然氮循环,对人类健康构成重大威胁。到目前为止,已经开发了许多物理、化学和生物技术用于硝酸盐修复,但其中大多数需要高昂的后处理成本和严格的处理条件。相比之下,硝酸盐电还原很有前景,因为它在环境条件下利用绿色电子作为还原剂。对硝酸盐反应机理的认识和掌握是设计和合成用于选择性还原硝酸盐的高效电催化剂的前提。在这方面,本综述旨在深入了解硝酸盐还原的电催化机理,特别是结合不同材料的原位电化学表征和理论计算。此外,总结了硝酸盐电还原的性能评估参数和标准测试方法,以筛选高效材料。最后,讨论了该研究领域当前的挑战和有前景的机遇。本综述为开发具有优异性能的选择性硝酸盐还原电催化剂提供了指导,并加速了可持续氮化学与工程的发展。