Sp/sp 2 carbon ratio‐driven high‐throughput screening of electrocatalytic nitrogen reduction performance on transition metal single‐atom catalysts

催化作用 吞吐量 碳纤维 过渡金属 Atom(片上系统) 还原(数学) 氮气 氮原子 材料科学 电催化剂 金属 化学 电极 电化学 冶金 物理化学 计算机科学 有机化学 复合材料 电信 几何学 数学 复合数 无线 群(周期表) 嵌入式系统
作者
Zexiang Yin,Yongdan Li,Y. G. Ye,Yuan Liu,M. Li,Zijun Yang,Xuerong Zheng,Haozhi Wang,Yang Wang,Yida Deng
出处
期刊:Rare Metals [Springer Nature]
卷期号:43 (11): 5781-5791 被引量:19
标识
DOI:10.1007/s12598-024-02836-0
摘要

Abstract Single‐atom catalysts (SACs) have been widely utilized in electrochemical nitrogen reduction reactions (NRR) due to their high atomic utilization and selectivity. Owing to the unique sp/sp 2 co‐hybridization, graphyne materials can offer stable adsorption sites for single metal atoms. To investigate the influence of the sp/sp 2 hybrid carbon ratio on the electrocatalytic NRR performance of graphyne, a high‐throughput screening of 81 catalysts, with 27 transition metals loaded on graphyne (GY1), graphdiyne (GY2), and graphtriyne (GY3), was conducted using first‐principles calculations. The results of the screening revealed that Ti@GY3 exhibits the lowest energy barrier for the rate‐determining step (0.32 eV) in NRR. Further, to explore the impact of different sp/sp 2 ‐hybridized carbon ratios on the catalytic activity of SACs, the mechanism of nitrogen (N 2 ) adsorption, activation, and the comprehensive pathway of NRR on Ti@GY1, Ti@GY2, and Ti@GY3 was systematically investigated. It was found that the ratio of sp/sp 2 ‐hybridized carbon can significantly modulate the d ‐band center of the metal, thus affecting the energy barrier of the rate‐determining step in NRR, decreasing from Ti@GY1 (0.59 eV) to Ti@GY2 (0.49 eV), and further to Ti@GY3 (0.32 eV). Additionally, the Hall conductance was found to increase with the bias voltage in the range of 0.4–1 V, as calculated by Nanodcal software, demonstrating an improvement in the conductivity of the SAC. In summary, this work provides theoretical guidance for modulating the electrocatalytic nitrogen reduction activity of SACs by varying the ratio of sp/sp 2 hybrid carbon, with Ti@GY3 showing potential as an excellent NRR catalyst.
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