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嵌入氮和氧共掺杂石墨烯的双金属对用于氮电还原的第一性原理研究

First-Principles Study of Bimetallic Pairs Embedded on Graphene Co-Doped with N and O for N Electroreduction.

作者信息

Dong Haozhe, Sun Hao, Xing Guanru, Liu Shize, Duan Xuemei, Liu Jingyao

机构信息

Institute of Theoretical Chemistry, College of Chemistry, Jilin University, Changchun 130023, China.

出版信息

Molecules. 2024 Feb 8;29(4):779. doi: 10.3390/molecules29040779.

Abstract

The electrocatalytic nitrogen reduction reaction (NRR) is considered a viable alternative to the Haber-Bosch process for ammonia synthesis, and the design of highly active and selective catalysts is crucial for the industrialization of the NRR. Dual-atom catalysts (DACs) with dual active sites offer flexible active sites and synergistic effects between atoms, providing more possibilities for the tuning of catalytic performance. In this study, we designed 48 graphene-based DACs with NO coordination (MM'@NO-G) using density functional theory. Through a series of screening strategies, we explored the reaction mechanisms of the NRR for eight catalysts in depth and revealed the "acceptance-donation" mechanism between the active sites and the N molecules through electronic structure analysis. The study found that the limiting potential of the catalysts exhibited a volcano-shaped relationship with the d-band center of the active sites, indicating that the synergistic effect between the bimetallic components can regulate the d-band center position of the active metal M, thereby controlling the reaction activity. Furthermore, we investigated the selectivity of the eight DACs and identified five potential NRR catalysts. Among them, MoCo@NO-G showed the best NRR performance, with a limiting potential of -0.20 V. This study provides theoretical insights for the design and development of efficient NRR electrocatalysts.

摘要

电催化氮还原反应(NRR)被认为是替代哈伯-博施法合成氨的一种可行方法,而设计高活性和高选择性的催化剂对于NRR的工业化至关重要。具有双活性位点的双原子催化剂(DACs)提供了灵活的活性位点以及原子间的协同效应,为调节催化性能提供了更多可能性。在本研究中,我们使用密度泛函理论设计了48种具有NO配位的基于石墨烯的DACs(MM'@NO-G)。通过一系列筛选策略,我们深入探究了8种催化剂的NRR反应机理,并通过电子结构分析揭示了活性位点与N分子之间的“接受-给予”机制。研究发现,催化剂的极限电位与活性位点的d带中心呈现出火山形关系,这表明双金属组分之间的协同效应可以调节活性金属M的d带中心位置,从而控制反应活性。此外,我们研究了这8种DACs的选择性,并确定了5种潜在的NRR催化剂。其中,MoCo@NO-G表现出最佳的NRR性能,极限电位为-0.20 V。本研究为高效NRR电催化剂的设计和开发提供了理论见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d662/10891683/db57430977da/molecules-29-00779-g002.jpg

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