催化作用
纳米晶
选择性
材料科学
钼
空间速度
水煤气变换反应
氨生产
氨
氧化还原
氮化物
化学工程
纳米技术
反应条件
二硫化钼
水准点(测量)
化学反应
可逆反应
可再生能源
活动站点
混合动力系统
化学稳定性
化学
作者
Jinshu Tian,Ling Fang,Ni Ouyang,Liwei Xia,Zhi Wang,Haiting Cai,Qilong Feng,Xinru Jiang,Jia Zhao,Mingwu Tan,Lili Zhang,Yong Wang,Xiaonian Li,Yihan Zhu
标识
DOI:10.1038/s41467-026-68756-y
摘要
The reverse water-gas shift reaction (RWGSR) is essential for converting CO2 into fuels using renewable hydrogen, but it remains challenged by the difficulty of simultaneously maximizing catalyst activity, selectivity, and stability. These limitations stem from thermodynamic constraints – specifically, the Gibbs-Curie-Wulff theorem - which restricts the synthetic accessibility of high-energy micro-faceted nanocrystals via conventional methods. To address this, we introduce a near-surface “quasi-hyperbaric” ammonia strategy that integrates atmospheric-pressure processing with in-situ ammonia decomposition. This approach enables the controlled synthesis of molybdenum nitride nanocrystals with preferentially exposed high-energy (112) microfacets. These facets promote CO2 activation through a hydrogen-assisted redox mechanism, driven by geometrically confined and stabilized Mo-N/M-O hybrid active sites. The resulting catalyst outperforms the benchmark Pt/CeO₂, which typically suffers from CO selectivity below 92%. Our catalyst achieves near-equilibrium conversion (56%) at a space velocity (24000 ml/gcat/h), with 100% CO selectivity and outstanding stability (≤ 1% deactivation over 250 hours). The reverse water–gas shift reaction is crucial for CO₂ conversion using renewable hydrogen, but simultaneously achieving high activity, selectivity, and stability in catalysts remains a challenge. Here, the authors introduce a near-surface “quasi-hyperbaric” ammonia strategy that integrates atmospheric-pressure processing with in situ ammonia decomposition to synthesize a high-energy Mo₂N-based catalyst capable of overcoming these trade-offs.
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