Qian Shuairen, Dai Tianying, Feng Kai, Li Zhengwen, Sun Xiaohang, Chen Yuxin, Nie Kaiqi, Yan Binhang, Cheng Yi
Department of Chemical Engineering, Tsinghua University, Beijing 100084, P. R. China.
Institute of Functional Nano & Soft Materials (FUNSOM), Soochow University, Suzhou, Jiangsu 215123, P. R. China.
JACS Au. 2024 May 10;4(5):1975-1985. doi: 10.1021/jacsau.4c00194. eCollection 2024 May 27.
Chemical looping ammonia synthesis (CLAS) is a promising technology for reducing the high energy consumption of the conventional ammonia synthesis process. However, the comprehensive understanding of reaction mechanisms and rational design of novel nitrogen carriers has not been achieved due to the high complexity of catalyst structures and the unrevealed relationship between electronic structure and intrinsic activity. Herein, we propose a multistage strategy to establish the connection between catalyst intrinsic activity and microscopic electronic structure fingerprints using density functional theory computational energetics as bridges and apply it to the rational design of metal nitride catalysts for lattice nitrogen-mediated ammonia production. Molybdenum-based nitride catalysts with well-defined structures are employed as prototypes to elucidate the decoupled effects of electronic and geometrical features. The electron-transfer and spin polarization characteristics of the magnetic metals are constructed as descriptors to disclose the atomic-scale causes of intrinsic activity. Based on this design strategy, it is demonstrated that NiMoN catalysts possess the highest lattice nitrogen-mediated ammonia synthesis activity. This work reveals the structure-activity relationship of metal nitrides for CLAS and provides a multistage perspective on catalyst rational design.
化学链氨合成(CLAS)是一种很有前景的技术,可降低传统氨合成过程的高能耗。然而,由于催化剂结构的高度复杂性以及电子结构与本征活性之间尚未揭示的关系,尚未实现对反应机理的全面理解和新型氮载体的合理设计。在此,我们提出一种多阶段策略,以密度泛函理论计算能量学为桥梁,建立催化剂本征活性与微观电子结构指纹之间的联系,并将其应用于晶格氮介导氨生产的金属氮化物催化剂的合理设计。具有明确结构的钼基氮化物催化剂被用作原型,以阐明电子和几何特征的解耦效应。构建磁性金属的电子转移和自旋极化特性作为描述符,以揭示本征活性的原子尺度原因。基于此设计策略,证明NiMoN催化剂具有最高的晶格氮介导氨合成活性。这项工作揭示了用于CLAS 的金属氮化物的结构-活性关系,并为催化剂的合理设计提供了一个多阶段的视角。