Add BrightSurf on Google Email

Support ionic potential dictates molybdenum carbide formation and reverse water gas shift activity

08.05.26 | Higher Education Press
Kestrel 3000 Pocket Weather Meter

Kestrel 3000 Pocket Weather Meter measures wind, temperature, and humidity in real time for site assessments, aviation checks, and safety briefings.


The reverse water gas shift reaction—converting CO₂ and H₂ into CO—is a key step for carbon recycling, as CO serves as a crucial feedstock for Fischer Tropsch synthesis, methanol production, and hydroformylation. However, activating CO₂ and achieving high CO selectivity remain challenging. In a study published in ENG. Chem. Eng. , researchers at Tianjin University and collaborators demonstrate that support properties critically determine the in situ formation of active molybdenum carbide from MoO₃ precatalysts, providing a rational framework for catalyst design.

The team first evaluated seven commercial early transition metal oxides. MoO₃ and WO₃ exhibited the highest CO₂ conversions (40.8 % and 33.9 %, respectively), while others showed much lower activity. Thermodynamic calculations revealed that only MoO₃ and WO₃ possess negative Gibbs free energies for carburization by CO. XPS confirmed that Mo₂C formed on the surface of spent MoO₃ (6.8 %), while WO₃ formed W₂C (67.5 %). No carbides were detected on other oxides, establishing a strong correlation between catalytic activity and carbide formation.

To further enhance performance, Mo was supported on six distinct oxides (MgO, γ Al₂O₃, SiO₂, TiO₂, ZrO₂, and CeO₂) at 8.4 wt % loading. Mo/SiO₂ exhibited the highest CO₂ conversion (46.5 % at optimal 25.2 wt % loading) and forward rate (388.8 molCO·molmetal⁻¹·h⁻¹), while Mo/CeO₂ and Mo/MgO showed the lowest activities (9.4 % and 7.9 % conversion, respectively). All catalysts maintained 100 % CO selectivity.

XPS analysis of spent catalysts transferred without air exposure revealed that Mo₂C formed on all supported catalysts, but surface concentrations varied dramatically. The forward rate correlated positively with Mo₂C surface content. Kinetic studies showed that active catalysts (Mo/SiO₂, Mo/ZrO₂, Mo/TiO₂, Mo/γ Al₂O₃) exhibited similar reaction orders (CO₂: ~0.31, H₂: ~0.66) and activation energies (42.6±5.9 kJ·mol⁻¹), indicating a common Mo₂C active phase. In contrast, Mo/CeO₂ and Mo/MgO displayed distinctly higher activation energies (69.0 and 77.9 kJ·mol⁻¹, respectively), consistent with solid solution dominated active sites resistant to carburization.

The ionic potential of the support was identified as a quantitative descriptor for metal oxide support interaction strength. On acidic supports with high ionic potential (SiO₂, ZrO₂, TiO₂, γ Al₂O₃), weak metal oxide support interaction preserves MoO₃ crystallites that readily undergo in situ carburization to Mo₂C. On basic supports with low ionic potential (MgO, CeO₂), strong metal oxide support interaction promotes stable solid solutions that suppress carburization. Specific surface area serves as a secondary factor: on amphoteric supports with comparable ionic potential, higher surface area strengthens metal oxide support interaction and reduces Mo₂C formation.

Notably, lowering the calcination temperature from 500 °C to 300 °C for Mo/CeO₂ eliminated the Ce Mo solid solution, restored MoO₃ crystallites, and increased CO₂ conversion five fold (from 5.2 % to 27.4 %), confirming that inhibiting solid solution formation enhances performance.

This work establishes ionic potential as a practical descriptor for support selection, providing a clear theoretical foundation for designing high performance Mo based RWGS catalysts.

ENGINEERING Chemical Engineering

10.1007/s11705-026-2684-0

Experimental study

Not applicable

Support effect of MoOxCy catalyst in the reverse water gas shift reaction

3-Jun-2026

Keywords

Article Information

Contact Information

Rong Xie
Higher Education Press
xierong@hep.com.cn

Source

This article is based on a news release from Higher Education Press. BrightSurf curates and republishes science news from research institutions worldwide; the original release is linked below.

How to Cite This Article

APA:
Higher Education Press. (2026, August 5). Support ionic potential dictates molybdenum carbide formation and reverse water gas shift activity. Brightsurf News. https://www.brightsurf.com/news/1WR4639L/support-ionic-potential-dictates-molybdenum-carbide-formation-and-reverse-water-gas-shift-activity.html
MLA:
"Support ionic potential dictates molybdenum carbide formation and reverse water gas shift activity." Brightsurf News, Aug. 5 2026, https://www.brightsurf.com/news/1WR4639L/support-ionic-potential-dictates-molybdenum-carbide-formation-and-reverse-water-gas-shift-activity.html.