Selective Activation of Methane on Single-Atom Catalyst of Rhodium Dispersed on Zirconia for Direct Conversion.

Direct methane conversion into value-added products has become increasingly important. Because of inertness of methane, cleaving the first C-H bond has been very difficult, requiring high reaction temperature on the heterogeneous catalysts. Once the first C-H bond becomes activated, the remaining C-...

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Detalles Bibliográficos
Publicado en:Journal of the American Chemical Society Vol. 139; no. 48; pp. 17694 - 17700
Autores principales: Yongwoo Kwon, Tae Yong Kim, Gihun Kwon, Jongheop Yi, Hyunjoo Lee
Formato: Artículo
Publicado: American Chemical Society 12/6/2017
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Acceso en línea:Ver este registro en EBSCOhost
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Sumario:Direct methane conversion into value-added products has become increasingly important. Because of inertness of methane, cleaving the first C-H bond has been very difficult, requiring high reaction temperature on the heterogeneous catalysts. Once the first C-H bond becomes activated, the remaining C-H bonds are successively dissociated on the metal surface, hindering the direct methane conversion into chemicals. Here, a single-atom Rh catalyst dispersed on ZrO surface has been synthesized and used for selective activation of methane. The Rh single atomic nature was confirmed by extended X-ray fine structure analysis, electron microscopy images, and diffuse reflectance infrared Fourier transform spectroscopy. A model of the singleatom Rh/ZrO catalyst was constructed by density functional theory calculations, and it was shown that CH intermediates can be energetically stabilized on the single-atom catalyst. The direct conversion of methane was performed using HO in the aqueous solution or using O in gas phase as oxidants. Whereas Rh nanoparticles produced CO only, the single-atom Rh catalyst produced methanol in aqueous phase or ethane in gas phase.