Regulating the electrocatalytic performance for nitrogen reduction reaction by tuning the N contents in Fe3@NxC20-x (x = 0~4): a DFT exploration

Bing Han, Fengyu Li
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Abstract

The Haber-Bosch (H-B) process, which is widely used in industry to synthesize ammonia, leads to serious energy and environment-related issues. The electrochemical nitrogen reduction reaction (eNRR) is the most promising candidate to replace H-B processes because it is more energy-efficient and environmentally friendly. Atomic-level catalysts, such as single-atom and double-atom catalysts (SACs and DACs), are of great interest due to their high atomic utilization and activity. The synergy between the metal atoms and two-dimensional (2D) support not only modulates the local electronic structure of the catalyst but also controls the catalytic performance. In this article, we explored the eNRR performance of 2D Fe3@Nx C20-x (x = 0~4), whose structure was based on the experimentally synthesized Ag3@C20 sheet, by means of density functional theory calculations. Through calculations, we found that the 2D Fe3@N4C16 with Fe2 site coordinated with four N is a promising eNRR catalyst: the limiting potential is as low as -0.45 V, and the competing hydrogen evolution reaction can be effectively suppressed. Our work not only confirms that the coordination environment of the metal site is crucial for the electrocatalytic activity but also provides a new guideline for designing low-cost eNRR catalysts with high efficiency.
通过调节Fe3@NxC20-x (x = 0~4)中N含量调节氮还原反应电催化性能的DFT探索
广泛应用于工业合成氨的Haber-Bosch (H-B)工艺导致了严重的能源和环境问题。电化学氮还原反应(eNRR)因其更节能、更环保而成为最有希望取代H-B工艺的方法。原子级催化剂,如单原子和双原子催化剂(SACs和dac),由于其高原子利用率和活性而受到广泛关注。金属原子与二维载体之间的协同作用不仅可以调节催化剂的局部电子结构,还可以控制催化剂的催化性能。本文通过密度泛函理论计算,探讨了基于实验合成的Ag3@C20薄片结构的二维Fe3@Nx C20-x (x = 0~4)的eNRR性能。通过计算,我们发现具有Fe2位与4个N配位的2D Fe3@N4C16是一种很有前途的eNRR催化剂,其极限电位低至-0.45 V,并且可以有效抑制竞争析氢反应。本研究不仅证实了金属位点的配位环境对电催化活性的影响,而且为设计低成本、高效率的eNRR催化剂提供了新的指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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