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非金属掺杂材料用于电催化还原制氨的研究进展

Progress Made in Non-Metallic-Doped Materials for Electrocatalytic Reduction in Ammonia Production.

作者信息

Quoie Gerald D S, Jiao Mingshuo, Lászlód Krisztina, Wang Ying

机构信息

State Key Laboratory of Pollution Control and Resources Reuse, College of Environmental Science and Engineering, Tongji University, Shanghai 200092, China.

Shanghai Institute of Pollution Control and Ecological Security, Shanghai 200092, China.

出版信息

Materials (Basel). 2024 May 17;17(10):2419. doi: 10.3390/ma17102419.

Abstract

The electrocatalytic production of ammonia has garnered considerable interest as a potentially sustainable technology for ammonia synthesis. Recently, non-metallic-doped materials have emerged as promising electrochemical catalysts for this purpose. This paper presents a comprehensive review of the latest research on non-metallic-doped materials for electrocatalytic ammonia production. Researchers have engineered a variety of materials, doped with non-metals such as nitrogen (N), boron (B), phosphorus (P), and sulfur (S), into different forms and structures to enhance their electrocatalytic activity and selectivity. A comparison among different non-metallic dopants reveals their distinct effects on the electrocatalytic performance for ammonia production. For instance, N-doping has shown enhanced activity owing to the introduction of nitrogen vacancies (NVs) and improved charge transfer kinetics. B-doping has demonstrated improved selectivity and stability, which is attributed to the formation of active sites and the suppression of competing reactions. P-doping has exhibited increased ammonia generation rates and Faradaic efficiencies, likely due to the modification of the electronic structure and surface properties. S-doping has shown potential for enhancing electrocatalytic performance, although further investigations are needed to elucidate the underlying mechanisms. These comparisons provide valuable insights for researchers to conduct in-depth studies focusing on specific non-metallic dopants, exploring their unique properties, and optimizing their performance for electrocatalytic ammonia production. However, we consider it a priority to provide insight into the recent progress made in non-metal-doped materials and their potential for enabling long-term and efficient electrochemical ammonia production. Additionally, this paper discusses the synthetic procedures used to produce non-metal-doped materials and highlights the advantages and disadvantages of each method. It also provides an in-depth analysis of the electrochemical performance of these materials, including their Faradaic efficiencies, ammonia yield rate, and selectivity. It examines the challenges and prospects of developing non-metallic-doped materials for electrocatalytic ammonia production and suggests future research directions.

摘要

作为一种潜在的可持续氨合成技术,电催化制氨已引起了广泛关注。最近,非金属掺杂材料已成为用于此目的的有前景的电化学催化剂。本文对用于电催化氨生产的非金属掺杂材料的最新研究进行了全面综述。研究人员设计了多种材料,将氮(N)、硼(B)、磷(P)和硫(S)等非金属掺杂成不同的形式和结构,以提高其电催化活性和选择性。不同非金属掺杂剂之间的比较揭示了它们对氨生产电催化性能的不同影响。例如,N掺杂由于引入了氮空位(NVs)和改善了电荷转移动力学而显示出增强的活性。B掺杂已证明具有改善的选择性和稳定性,这归因于活性位点的形成和竞争反应的抑制。P掺杂表现出提高的氨生成速率和法拉第效率,这可能是由于电子结构和表面性质的改变。S掺杂显示出增强电催化性能的潜力,尽管需要进一步研究以阐明其潜在机制。这些比较为研究人员提供了有价值的见解,以便他们针对特定的非金属掺杂剂进行深入研究,探索其独特性质,并优化其用于电催化氨生产的性能。然而,我们认为首要任务是深入了解非金属掺杂材料的最新进展及其实现长期高效电化学氨生产的潜力。此外,本文讨论了用于生产非金属掺杂材料的合成方法,并突出了每种方法的优缺点。它还对这些材料的电化学性能进行了深入分析,包括它们的法拉第效率、氨产率和选择性。它研究了开发用于电催化氨生产的非金属掺杂材料的挑战和前景,并提出了未来的研究方向。

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