化学
催化作用
密度泛函理论
氨生产
电子效应
化学物理
电子结构
粒子(生态学)
氨
粒径
金属
多相催化
吸附
电子密度
电荷密度
基本电荷
氢
纳米技术
计算化学
无机化学
化学工程
活动站点
物理化学
态密度
作者
Yaejun Baik,Seunghyuck Chi,DongHwan Oh,S LEE,K. Lee,Chanyoung Oh,Minho M. Kim,Dooam Paik,Minju Chung,Hyungjun Kim,Minkee Choi
摘要
Metal particle-size effects in heterogeneous catalysis are commonly interpreted in geometric terms, where catalytic trends arise from variations in the density of active surface ensembles while the intrinsic properties of the sites are generally assumed to remain unchanged. Here we demonstrate that metal particle size also governs the intrinsic properties of active sites via size-dependent electronic promotion, beyond conventional geometric effects. Using well-defined Ru catalysts supported on multiwalled carbon nanotubes for ammonia synthesis, we separate the geometric contribution of B5-like site density from changes in the intrinsic properties of the sites induced by electronic promotion. Without promoters, the adsorption and catalytic properties of these sites remain essentially invariant with particle size, consistent with classical geometric interpretations. In contrast, with electronic promotion using BaO, interfacial charge storage and capacitive effects enable smaller Ru particles, with higher surface-to-volume ratios, to accumulate greater electron densities. This size-dependent electronic enrichment directly tunes the intrinsic reactivity of individual B5-like sites, strengthening N2 activation through enhanced π-backdonation and alleviating hydrogen poisoning, leading to higher site-specific activity. These findings establish particle size as a dual control parameter that modulates both site density and intrinsic site properties via electronic effects, providing new insight into the complex interplay between catalyst structure, charge distribution, and intrinsic catalytic activity.
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