纳米团簇
乙炔
催化作用
乙烯
选择性
材料科学
镍
原位
化学工程
光化学
氢
活动站点
无机化学
焦炭
铝
纳米技术
光谱学
化学
X射线光电子能谱
纳米颗粒
制氢
配体(生物化学)
作者
Yanan Liu,He Yu,Mengjiao Li,Li Yan,Ruihu Lu,Xiuting Fu,Zhenfei Zhang,Youqi Zhu,Ziyun Wang,Shubo Tian
标识
DOI:10.1038/s41467-026-70323-4
摘要
Abstract Synergistic catalysis, where distinct active species collaboratively activate different substrates, provides a powerful strategy for achieving chemical transformations with enhanced efficiency. Although Al 2 O 3 and bulk aluminum species are widely employed as catalyst supports, they are seldom regarded as active centers, especially in hydrogenation. Here, we show that atomically dispersed Al species can catalyze acetylene conversion at elevated temperatures. Building on this insight, we have designed a synergistic catalyst featuring precisely controlled Al dual-atom sites paired with Ni nanoclusters, synthesized via a solid-transformation-coupled gas-adsorption strategy to overcome the typical activity-selectivity trade-off. Under mild, cost-effective conditions, this catalyst achieves nearly full acetylene conversion with ~90% ethylene selectivity and excellent long-term stability. In situ spectroscopy and theoretical calculations reveal a cooperative mechanism: Ni nanoclusters efficiently dissociate H 2 into active hydrogen species (H*), while adjacent Al dual-atom sites shuttle the H* species to π-adsorbed acetylene, lowering the energy barrier for ethylene formation compared to over-hydrogenation and coke formation.
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