还原诱导的选择性CO2加氢的金属/氧化物界面位点

SmartMat Pub Date : 2023-03-29 DOI:10.1002/smm2.1201
Zhenhua Xie, Sooyeon Hwang, Jing Chen
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引用次数: 1

摘要

双金属衍生催化剂的界面结构在促进CO2等反应物的活化中起着重要作用。特别是,物理性质(例如,局部成键环境)和电子性质(例如,氧化态)都可以在不同的环境下,例如在还原和催化反应过程中,从它们的原始状态演变而来。因此,本研究以Rh基催化剂上的CO2加氢反应为例,比较了调整对CH4或CO选择性的界面结构。结合非原位和原位表征,揭示了两种具有代表性的界面结构:Rh/CeO2上形成的Rh/CeOx界面具有活性和选择性,通过甲酸盐介导的途径产生CH4 (~95%);相比之下,还原后生成的InOx/Rh界面对CO2活化具有活性,并实现了CO的氧化还原机制(~100%)。这项工作提供了对环境诱导的金属-氧化物界面结构演化的见解,以及不同界面活性位点在调节CO2加氢选择性中的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reduction‐induced metal/oxide interfacial sites for selective CO2 hydrogenation
The interfacial structures of bimetallic‐derived catalysts play an important role in promoting the activation of reactants such as CO2. In particular, both the physical property (e.g., local bonding environment) and the electronic property (e.g., oxidation state) can evolve from their native states under different environments, such as upon reduction and during the catalytic reaction. Hence, taking the CO2 hydrogenation reaction over Rh‐based catalysts as a case study, the present work compares the interfacial structures in tuning the selectivity toward CH4 or CO. The combination of ex situ and in situ characterization reveals two representative interfacial structures: the Rh/CeOx interface formed over Rh/CeO2 is active and selective to produce CH4 (~95%) by following a formate‐mediated pathway; in comparison, the InOx/Rh interface derived after reduction is active for CO2 activation and enables a redox mechanism for the exclusive formation of CO (~100%). This work provides insights into the environment‐induced structural evolution at the metal−oxide interfaces, as well as the role of distinct interfacial active sites in tuning the selectivity of CO2 hydrogenation.
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