催化作用
活动站点
氨
化学
氧化铈
离解(化学)
分解
联想代换
氧化物
氧化还原
铈
无机化学
氨生产
反应机理
组合化学
掺杂剂
合理设计
选择性催化还原
煅烧
氢
材料科学
一氧化二氮
光化学
兴奋剂
结合能
氮气
氢键
结合属性
作者
Dongpei Ye,Mingyu Luo,Xiaowei Liu,Christopher Foo,Mengqi Duan,Xuelei Pan,Jiasi Li,Simson Wu,Wei Liu,Michail Stamatakis,Yiyang Li,Shik Chi Edman Tsang
标识
DOI:10.1038/s41467-026-70330-5
摘要
Abstract The catalytic decomposition of ammonia under mild conditions is a promising route for green hydrogen production. However, conventional dissociative ammonia decomposition pathways over metal sites are suffering from the Brønsted−Evans−Polanyi (BEP) constraint which establishes an inverse correlation between atomic N binding energy and the N-H bond dissociation energy. Herein, we report a ruthenium-supported nitrogen-doped cerium oxide (Ru/N-CeO 2 ) catalyst that breaks this limitation and exhibits significantly enhanced catalytic activity compared to its undoped counterpart. Furthermore, we reveal that N dopants can act as independent active sites, enabling an associative mechanism distinct from the conventional Ru-driven pathway. Comprehensive isotopic labelling experiments together with computational techniques elucidate the reaction mechanism over the N site and reveal a distinct correlation between the location of the active site and catalytic activity. The proximal N site exhibits the highest activity, challenging the conventional view that activity is dominated by metal–support interfacial sites. While N doping is a commonly used approach for surface modification, our findings show that it can also alter the reaction mechanism by introducing new active sites. These insights offer valuable guidance for the rational design of catalytic supports in ammonia decomposition and open new directions for catalytic systems limited by scaling relationships in heterogenous catalysis.
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