Song Ruofei, Yang Jian, Wang Mingyuan, Shi Zhenzhen, Zhu Xiaopeng, Zhang Xiangzhao, He Minghua, Liu Guiwu, Qiao Guanjun, Xu Ziwei
School of Materials Science & Engineering, Jiangsu University, Zhenjiang 212013, China.
ACS Omega. 2021 Mar 16;6(12):8662-8671. doi: 10.1021/acsomega.1c00581. eCollection 2021 Mar 30.
The conversion of gaseous N to ammonia under mild conditions by artificial methods has become one of the hot topics and challenges in the field of energy research today. Accordingly, based on density function theory calculations, we comprehensively explored the d-block of metal atoms (Ti, V, Cr, Mn, Fe, Co, Ni, Nb, Mo, Ru, Rh, W, and Pt) embedded in arsenene (Ars) for different transition systems of phosphorus (P) coordination as potential electrocatalysts for N reduction reaction (NRR). By adopting a "two-step" strategy with stringent NRR catalyst screening criteria, we eventually selected Nb@P-Ars as a research object for a further in-depth NRR mechanism study. Our results show that Nb@P-Ars not only maintains the thermodynamic stability at mild temperatures but also dominates the competition with the hydrogen evolution reaction when used as the electrochemical NRR (e-NRR) catalyst. In particular, while the NRR process occurs by the distal mechanism, Nb@P-Ars has a low overpotential (0.36 V), which facilitates the efficient reduction of N. Therefore, this work predicts the possibility of Nb@P-Ars as an e-NRR catalyst for reducing N from a theoretical perspective and provides significant insights and theoretical guidance for future experimental research.
在温和条件下通过人工方法将气态氮转化为氨已成为当今能源研究领域的热点话题和挑战之一。因此,基于密度泛函理论计算,我们全面探索了嵌入砷烯(Ars)中的金属原子(Ti、V、Cr、Mn、Fe、Co、Ni、Nb、Mo、Ru、Rh、W和Pt)的d区,用于磷(P)配位的不同过渡体系,作为氮还原反应(NRR)的潜在电催化剂。通过采用具有严格NRR催化剂筛选标准的“两步”策略,我们最终选择Nb@P-Ars作为进一步深入研究NRR机理的研究对象。我们的结果表明,Nb@P-Ars不仅在温和温度下保持热力学稳定性,而且在用作电化学NRR(e-NRR)催化剂时主导与析氢反应的竞争。特别是,当NRR过程通过远端机理发生时,Nb@P-Ars具有低过电位(0.36 V),这有利于氮的高效还原。因此,这项工作从理论角度预测了Nb@P-Ars作为e-NRR催化剂还原氮的可能性,并为未来的实验研究提供了重要的见解和理论指导。