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CuO(200)-CuO(1̅11) Interface Enables Efficient Low-Temperature Catalytic Decomposition of CH3SH
Junyu Lai1,2, Yu Feng1,2, Zhizhi Xu3,2
1Faculty of Environmental Science and Engineering, Kunming University of Science and Technology, Kunming 650500, P. R. China.
None:
The catalytic degradation of sulfur-containing volatile organic compounds (S-VOCs), especially methyl mercaptan (CH3SH), is often limited by the insufficient low-temperature activity of conventional catalysts. Herein, an inverse Cu-Ce catalyst featuring a well-defined CuO(200) facet and CuO(200)-CuO(1̅11) interface, denoted as CuO/CeO2-CP(7), is constructed through facet regulation and interfacial engineering. The catalyst enables complete conversion of CH3SH at 150 °C and exhibits a substantially lower apparent activation energy, demonstrating superior intrinsic activity compared with most reported catalysts. Structural-activity correlation reveals that the interface architecture stabilizes Cu+ species, enhances active-oxygen migration-replenishment, and significantly strengthens CH3SH adsorption and activation, thereby driving a stepwise deep-conversion route of CH3SH → CH3SSCH3 → CH3SCH3/HCOOH → CH4. In-situ FTIR confirms that Cu+-O* cooperative sites govern the coupling, rearrangement, and deep-reduction processes, while deactivation analysis identifies disrupted oxygen cycling as the primary cause of activity loss. This work highlights the critical role of CuO-CuO interfacial modulation in advancing low-temperature S-VOCs degradation and provides an effective strategy for designing highly active inverse Cu-Ce catalysts.
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