Related Experiment Video
Updated: Sep 2, 2026

Temperature-programmed Deoxygenation of Acetic Acid on Molybdenum Carbide Catalysts
Published on: February 7, 2017
A comprehensive review on oxygen defect rich catalysts for low-temperature CO2 hydrogenation to methane and alcohols
Rahma Merza Hasan1, Omar Mohamed Abdelsalam1, Ashutosh Rawat2
1Department of Chemical Engineering, King Fahd University of Petroleum and Minerals, Dhahran, Saudi Arabia.
Abstract:
The thermo-catalytic hydrogenation of greenhouse gas CO2 into more valuable products, primarily fuels such as methane and alcohols, is a promising pathway of carbon utilization. Since CO2 is known for its inertness with high activation energy, which makes it difficult to activate for the hydrogenation reaction, thus demanding higher temperatures for its conversion to useful products. Widespread efforts have been made to optimize catalysts for better catalytic performance at less severe operating conditions. This has garnered research community interest in utilizing the oxygen defect-rich metal catalysts, where missing oxygen atoms, or oxygen vacancies (VOs), contribute to the adsorption and geometry distortion of CO2, easing its reaction with H2. This review presents an overview of the potential of oxygen defect-rich catalysts for low-temperature CO2 hydrogenation, particularly focusing on those with supports such as CeO2, ZrO2, and TiO2. The fundamentals of VOs, including their types, impact, formation, and characterization techniques, are discussed, followed by an examination of their role in improving catalytic performance and steering reaction pathways towards methane and alcohols. Emphasis is placed on relevant optimization parameters, including catalyst features (metal loading and dispersion, type of metal, structure, etc.), presence and density of VOs and hydrogenation promoters, and reaction conditions (temperature, pressure, H2:CO2 feed ratio, flow rate). Recent advances are summarized, and lastly, current challenges and prospects are discussed.
More Related Videos
Related Concept Videos
Reduction of Alkenes: Catalytic Hydrogenation
Metals like palladium, platinum, and nickel are commonly used in their solid forms — fine powder on an inert surface. As these catalysts remain insoluble in the reaction mixture, they are referred to as heterogeneous catalysts.
The hydrogenation process takes place on the surface of...
Reduction of Alkynes to cis-Alkenes: Catalytic Hydrogenation
Like alkenes, alkynes can be reduced to alkanes in the presence of transition metal catalysts such as Pt, Pd, or Ni. The reaction involves two sequential syn additions of hydrogen via a cis-alkene intermediate.
Reduction of Alkenes: Asymmetric Catalytic Hydrogenation
The metal catalyst used can be either heterogeneous or homogeneous. When hydrogenation of an alkene generates a chiral center, a pair of enantiomeric products is expected to form. However, an enantiomeric excess of one of the products can be facilitated using an enantioselective reaction or an...
Alcohols from Carbonyl Compounds: Reduction
Catalytic hydrogenation is similar to the reduction of an alkene or alkyne by adding H2 across the pi bond in the presence of transition metal catalysts like Raney Ni, Pd–C, Pt, or Ru. Aldehydes and ketones can be reduced by this method, often under mild to moderate heat (25–100°C) and...
Alkynes to Aldehydes and Ketones: Hydroboration-Oxidation
One of the convenient methods for the preparation of aldehydes and ketones is via hydration of alkynes. Hydroboration-oxidation of alkynes is an indirect hydration reaction in which an alkyne is treated with borane followed by oxidation with alkaline peroxide to form an enol that rapidly converts into an aldehyde or a ketone. Terminal alkynes form aldehydes, whereas internal alkynes give ketones as the final product.
Oxidative Cleavage of Alkenes: Ozonolysis
Ozone is a symmetrical bent molecule stabilized by a resonance structure.

