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Ammonia synthesis over cesium-promoted mesoporous-carbon-supported ruthenium catalysts: Impact of graphitization degree of the carbon support
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Ammonia synthesis over cesium-promoted mesoporous-carbon-supported ruthenium catalysts: Impact of graphitization degree of the carbon support

Shih-Yuan Chen, Li-Yu Wang, Kai-Chun Chen, Cheng-Hsi Yeh, Wei-Chih Hsiao, Hsin-Yu Chen, Masayasu Nishi, Martin Keller, Chih-Li Chang, Chien-Neng Liao, …
Applied Catalysis B: Environmental, 卷.346
11/01/2024

摘要

Cesium promoted ruthenium catalyst;Degree of graphitization;in situ spectroscopy;Mesoporous carbon;Mild ammonia synthesis
<p><meta charset="UTF-8" />Carbon-supported ruthenium catalysts facilitate electrically-assisted Haber&ndash;Bosch ammonia synthesis. However, the relationship between carbon supports and catalytic performance remains ambiguous. We developed ordered mesoporous carbon plates (MCPs) with varying graphitization degrees as Cs-promoted Ru catalyst supports, examining correlations between ammonia synthesis rate and key structural parameters, included graphitization degree, Ru nanoparticle size, and Cs/Ru ratio. High-graphitization-degree carbon supports resisted methanation and facilitated formation of reductive activation enabled dynamic Cs<sup>0</sup>&nbsp;species as electronic promotor, induced by spillover hydrogen from the Ru surface to CsOH. Density functional theory calculations further revealed that CsOH alleviated hydrogen poisoning. Notably, the catalyst supported on MCP-1100&mdash;which exhibited the highest graphitization degree among the supports and superior stability&mdash;with 10 wt% 2.3-nm-sized Ru nanoparticles and Cs/Ru = 2.5 achieved high ambient-pressure ammonia synthesis rates (7.9&ndash;43 mmol<sub>NH3</sub>&middot;g<sup>&minus;1</sup>&middot;h<sup>&minus;1</sup>) below 410 &deg;C. Furthermore, it functioned under intermittent operating conditions, potentially integrating renewable-electricity-based electrolytic hydrogen production. &copy; 2024 Elsevier B.V.</p>

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