Gurti Joseph Israel, Ding Xun-Lei, Wang Ya-Ya, Chen Yan, Li Wei, Wang Xin
School of Mathematics and Physics, North China Electric Power University, Beinong Road 2, Changping, Beijing, 102206, P. R. China.
International Education Institute, North China Electric Power University, Beinong Road 2, Changping, Beijing, 102206, P. R. China.
Chemphyschem. 2022 Jul 19;23(14):e202200124. doi: 10.1002/cphc.202200124. Epub 2022 May 19.
The reaction of N with trinuclear niobium and tungsten sulfide clusters Nb S and W S (n=0-3) was systematically studied by density functional theory calculations with TPSS functional and Def2-TZVP basis sets. Dissociations of N-N bonds on these clusters are all thermodynamically allowed but with different reactivity in kinetics. The reactivity of Nb S is generally higher than that of W S . In the favorite reaction pathways, the adsorbed N changes the adsorption sites from one metal atom to the bridge site of two metal atoms, then on the hollow site of three metal atoms, and at that place, the N-N bond dissociates. As the number of ligand S atoms increases, the reactivity of Nb S decreases because of the hindering effect of S atoms, while W S and W S have the highest reactivity among four W S clusters. The Mayer bond order, bond length, vibrational frequency, and electronic charges of the adsorbed N are analyzed along the reaction pathways to show the activation process of the N-N bond in reactions. The charge transfer from the clusters to the N antibonding orbitals plays an essential role in N-N bond activation, which is more significant in Nb S than in W S , leading to the higher reactivity of Nb S . The reaction mechanisms found in this work may provide important theoretical guidance for the further rational design of related catalytic systems for nitrogen reduction reactions (NRR).
采用密度泛函理论计算方法,运用TPSS泛函和Def2-TZVP基组,系统研究了N与三核铌和钨硫化物簇Nb₃Sₙ和W₃Sₙ(n = 0 - 3)的反应。这些簇上N-N键的解离在热力学上都是允许的,但在动力学上具有不同的反应活性。Nb₃Sₙ的反应活性通常高于W₃Sₙ。在最有利的反应途径中,吸附的N将吸附位点从一个金属原子改变为两个金属原子的桥位,然后是三个金属原子的中空位,在该位置N-N键发生解离。随着配体S原子数的增加,由于S原子的阻碍作用,Nb₃Sₙ的反应活性降低,而W₃S₄和W₃S₅在四个W₃Sₙ簇中具有最高的反应活性。沿着反应途径分析了吸附N的迈耶键级、键长、振动频率和电子电荷,以显示反应中N-N键的活化过程。从簇到N反键轨道的电荷转移在N-N键活化中起关键作用,在Nb₃Sₙ中比在W₃Sₙ中更显著,导致Nb₃Sₙ具有更高的反应活性。本工作中发现的反应机理可为进一步合理设计氮还原反应(NRR)相关催化体系提供重要的理论指导。