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电化学选择性硝酸盐还原:生成氮气和氨的途径。

Electrochemical Selective Nitrate Reduction: Pathways to Nitrogen and Ammonia Production.

作者信息

Islam Md Monjorul, Abu Nayem S M, Shah Syed Shaheen, Islam Md Zahidul, Aziz Md Abdul, Saleh Ahammad A J

机构信息

Department of Chemistry, Jagannath University, Dhaka, 1100, Bangladesh.

Socio-Environmental Energy Science Department, Graduate School of Energy Science, Kyoto University, Yoshida-honmachi, Sakyo-ku, Kyoto, 606-8501, Japan.

出版信息

Chem Rec. 2025 Feb;25(2):e202400206. doi: 10.1002/tcr.202400206. Epub 2024 Dec 23.

Abstract

Nitrate (NO ) contamination from industrial, agricultural, and anthropogenic activities poses significant risks to human health and ecosystems. While traditional NO remediation methods are effective, they often generate secondary pollutants and incur high costs. Electrochemical NO reduction (ECNR) offers a sustainable alternative, converting NO into environmentally benign nitrogen (N) or valuable ammonia (NH). This review explores recent advancements in selective ECNR pathways for NO -to-Nand NO -to-NH conversion, focusing on mechanistic insights, electrocatalyst development, and optimization strategies. Key factors influencing ECNR performance, such as electrode materials, electrolyte composition, and hydrogen evolution inhibition, are discussed. Additionally, the review highlights the role of single-atom, bimetallic, and nanostructured catalysts in enhancing faradaic efficiency, total N removal, and selectivity, with particular attention to Pd-Cu systems. Strategies to address challenges like low selectivity and catalyst degradation are also explored. This review underscores the potential of ECNR as a viable alternative to the energy-intensive Haber-Bosch process for NH production, aligning with global sustainability goals. Finally, we identify research gaps and propose future directions for improving the efficiency, stability, and scalability of ECNR technologies.

摘要

工业、农业和人为活动产生的硝酸盐(NO )污染对人类健康和生态系统构成重大风险。虽然传统的NO 修复方法有效,但它们往往会产生二次污染物并带来高昂成本。电化学NO还原(ECNR)提供了一种可持续的替代方案,可将NO 转化为环境友好的氮气(N)或有价值的氨(NH)。本综述探讨了NO 转化为N和NO 转化为NH的选择性ECNR途径的最新进展,重点关注机理见解、电催化剂开发和优化策略。讨论了影响ECNR性能的关键因素,如电极材料、电解质组成和析氢抑制。此外,本综述强调了单原子、双金属和纳米结构催化剂在提高法拉第效率、总氮去除率和选择性方面的作用,尤其关注Pd-Cu体系。还探讨了应对低选择性和催化剂降解等挑战的策略。本综述强调了ECNR作为一种可行替代方案的潜力,可替代生产NH的能源密集型哈伯-博施法,符合全球可持续发展目标。最后,我们确定了研究差距,并提出了未来提高ECNR技术效率、稳定性和可扩展性的方向。

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