材料科学
催化作用
化学工程
氨生产
氮化物
氨
无机化学
氮气
表征(材料科学)
多相催化
氮化碳
化学气相沉积
作者
Yu Ji,Xingda An,Shuang Liu,Kaiqi Nie,Liu Cao,Yuqing Xu,Jiahui Shen,Yi Zhou,C L Wu,Xudong Dong,Zimu Li,Qianyue Feng,Mengqi Xiao,Zhijie Chen,Chaoran Li,Binhang Yan,Yi Cheng,Shuairen Qian,Kai Feng,Le He
标识
DOI:10.1021/acsami.6c10038
摘要
Ammonia synthesis is a cornerstone of the modern chemical industry and emerging energy technologies, yet its catalytic efficiency remains fundamentally limited by the intrinsic linear scaling relationships. Here, we address this challenge by constructing a triphase heterostructure comprising a Ni 2 Mo 3 N host integrated with Mo 2 N domains and metallic Ni nanoparticles via a solid-solution reaction. Mechanistic studies reveal that metallic Ni activates H 2 and supplies spillover hydrogen to the Ni 2 Mo 3 N host, thereby promoting surface hydrogenation and generating nitrogen vacancies within the host lattice. These vacancies drive lattice nitrogen migration from the Mo 2 N reservoir to the host, simultaneously creating surface vacancies on Mo 2 N that serve as efficient N 2 activation centers. Through this spatially separated activation-conversion pathway, the catalyst effectively decouples conflicting elementary steps, achieving a high ammonia synthesis rate of 32.5 mmol·g Ni 2 Mo 3 N –1 ·h –1 at 500 °C under 1.0 MPa, which is nearly three times that of the Ni 2 Mo 3 N reference and superior to most reported Mo-based catalysts. This work establishes a general design paradigm for constructing tandem catalytic architectures based on a spatial-synergy strategy, providing a viable route to overcome the intrinsic Sabatier limitation imposed by scaling relationships.
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