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September 5, 2025Journal of the American Chemical Society35 citationsOpen Access

Flame-Made Surface-Substituted Copper–Ceria as an Excellent Reverse Water–Gas Shift Reaction Catalyst via Three Reaction Pathways

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BXBingqiao XieYZYi ZhuMSMahdi Shakeri

Key Points

  • The Cu–CeO2 catalyst shows significant improvement in CO production rate, exceeding 8094 mmol/gcat./h.
  • In situ spectroscopic analyses reveal three distinct parallel reaction pathways for the reverse water–gas shift reaction.
  • A dominant carboxylate-mediated pathway is identified, offering lower activation energy compared to classical methods.
  • A strong structure–activity correlation is established linking Cu+ species to enhanced catalytic performance.

Abstract

The limited mechanistic understanding and ambiguous structure–performance relationships have hindered the optimization of Cu-based catalysts for the reverse water–gas shift (rWGS) reaction. Here, we report a flame spray pyrolysis (FSP)-derived Cu–CeO2 catalyst featuring highly dispersed, surface-substituted Cu+ species (CuyCe1–yO2–x) anchored on a defect-rich ceria matrix. This catalyst demonstrates excellent stability and outstanding rWGS activity at 600 °C, achieving a CO production rate of 8094 mmol/gcat./h, surpassing the conventional Cu–CeO2 catalyst and other reported rWGS catalysts. In situ spectroscopic analyses, supported by DFT calculations, reveal three parallel reaction pathways in which carboxylate- and formate-mediated routes proceed at distinct active sites. A clear structure–activity correlation is established across Cu+, Cu0, and ceria defect sites in the FSP-derived catalysts. Notably, a previously underexplored carboxylate-mediated pathway, facilitated on the surface-substituted Cu+ structure, is identified as the dominant route, featuring a significantly lower apparent activation energy (20–30 kJ/mol) compared to the classical formate pathway.

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Cite This Study

Xie et al. (2025) studied this question.

synapsesocial.com/papers/68bb4d106d6d5674bcd0065ehttps://doi.org/10.1021/jacs.5c07701
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