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April 3, 2026Fuel4 citationsOpen Access

UiO-66-Ce derived cerium oxide supported Cu/ZnO methanol synthesis catalysts: optimization of interfacial sites and oxygen vacancy for CO2 activation

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ARAswini RamakrishnanSCSachin ChavanWTWakshum Mekonnen Tucho

Key Points

  • The aim is to optimize Cu/ZnO catalysts supported on UiO-66-Ce derived frameworks for efficient CO2 hydrogenation to methanol.
  • Synthesis of Cu/ZnO catalysts via urea hydrolysis on UiO-66-Ce supports.
  • Characterization using XRD, TEM, CO2-TPD, and XPS to analyze support structure and properties.
  • Catalytic activity tests performed at 220 °C and 40 bar to evaluate methanol production rates.
  • CuZn0.5@UiO-66 achieved the highest space-time yield of 373.4 gMeOH·kgcat −1 ·h −1.
  • Demonstrated stable performance over 150 hours with no deactivation observed.
  • Cu particle sizes decreased with increased Zn loading, enhancing metal-support interactions.

Abstract

• MOF-derived oxide framework is an excellent support for Cu-ZnO catalysts. • MOF supported catalysts demonstrated high interfacial sites and oxygen vacancies. • Increased Zn loading decreased Cu particle sizes but covers Cu surface. • CuZn0.5@UiO-66 showed the best methanol synthesis performance. Thermocatalytic hydrogenation of CO 2 to methanol represents a promising technology for mitigating carbon emissions while generating value-added fuels and chemical feedstocks. In this work, Cu/ZnO catalysts supported on UiO-66-Ce derived oxide frameworks were synthesized via urea hydrolysis. The UiO-66-Ce derived support provided a favorable support for anchoring Cu and ZnO x , as confirmed by XRD, TEM, CO 2 -TPD, and XPS characterizations. Catalytic activity tests revealed that CuZn0.5@UiO-66 achieved the highest space time yield (STY) of 373.4 gMeOH·kgcat −1 ·h −1 at 220 °C and 40 bar. Long-term activity test over 150 h showed stable performance of the catalyst without any deactivation. The excellent performance is attributed to finely dispersed Cu species and enhanced metal–support interactions due to Zn incorporation, as well as large amount of oxygen vacancies due to the MOF-derived support. This study highlights the potential application of MOFs as catalyst supports for efficient CO 2 hydrogenation to methanol.

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Cite This Study

Ramakrishnan et al. (2026) studied this question.

synapsesocial.com/papers/69cf59635a333a8214609f27https://doi.org/10.1016/j.fuel.2026.139325
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