氧化还原
催化作用
氧气
化学
化学物理
价(化学)
电子转移
纳米颗粒
氧化物
相(物质)
反应机理
析氧
透射电子显微镜
化学工程
纳米技术
多相催化
材料科学
光化学
电子结构
粒子(生态学)
反应中间体
原子氧
氧还原反应
氧气储存
表面电荷
分子动力学
作者
Zhongliang Cao,Shun Li,Guoao Luo,Liang Zhang,Zian Li,Xi Chen,Langli Luo
标识
DOI:10.1016/j.nanoms.2026.01.010
摘要
Reducible oxide supports prevail in heterogeneous catalytic processes owing to their ability to modulate both local electronic and geometric structure via variable valence and defect states for specific reactions. Nevertheless, their dynamic evolution under redox reaction conditions, often involving phase transformation via oxygen migration through a critical surface or interface, remains poorly understood at the atomic level. Herein, we utilize a RuO 2 /CeO 2 system to demonstrate the dynamic structure and phase changes during redox reaction conditions through in situ transmission electron microscopy and other spectroscopic techniques. Our investigation reveals a distinct oxygen-transfer mechanism governing interfacial dynamics at RuO 2 -CeO 2 boundaries, where reduction initiates preferentially at the metal-support interface rather than particle surfaces, propagating via an unconventional bottom-up reduction pathway characterized by sequential two-phase structural transition. The CeO 2 support demonstrates dual functionality as both oxygen reservoir and donor, enabling the re-oxidation of Ru nanoparticles via surface-mediated oxygen replenishment. This interfacial oxygen shuttle mechanism not only sheds light on the atomic-scale dynamics of reducible supports but also establishes fundamental principles for engineering metal-support architectures through precise control of interfacial charge transfer and oxygen mobility in catalytic systems.
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