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Published on: July 4, 2017
Polymorph selection towards photocatalytic gaseous CO2 hydrogenation
Tingjiang Yan1,2, Lu Wang3, Yan Liang4
1The Key Laboratory of Life-Organic Analysis, College of Chemistry and Chemical Engineering, Qufu Normal University, Qufu, Shandong, 273165, P. R. China. tingjiangn@163.com.
Rhombohedral indium sesquioxide is a novel photocatalyst for converting carbon dioxide (CO2) into methanol (CH3OH) and carbon monoxide (CO). This polymorph shows enhanced activity, stability, and selectivity for methanol production compared to other forms.
Area of Science:
- Materials Science
- Catalysis
- Photochemistry
Background:
- Polymorphism in materials engineering is key to optimizing photocatalyst performance.
- Titanium dioxide (anatase and rutile) is known for gas-phase CO2 photocatalysis.
- Indium sesquioxide (cubic polymorph) is a documented CO2 hydrogenation photocatalyst.
Purpose of the Study:
- To investigate the photocatalytic activity of the rhombohedral polymorph of indium sesquioxide for CO2 hydrogenation.
- To compare the performance of the rhombohedral polymorph with its cubic counterpart.
- To understand the origin of performance differences in indium sesquioxide polymorphs.
Main Methods:
- Synthesis and characterization of rhombohedral indium sesquioxide.
- Photocatalytic CO2 hydrogenation experiments under controlled conditions.
- Analysis of reaction products (CH3OH and CO) and catalyst stability.
Main Results:
- The rhombohedral polymorph of indium sesquioxide demonstrated photocatalytic activity for CO2 hydrogenation.
- It produced both methanol (CH3OH) and carbon monoxide (CO).
- The rhombohedral form exhibited higher activity, superior stability, and improved selectivity towards CH3OH over CO compared to the cubic form.
Conclusions:
- The rhombohedral polymorph of indium sesquioxide is an effective photocatalyst for CO2 hydrogenation.
- Enhanced surface acidity and basicity of frustrated Lewis pairs in the rhombohedral form contribute to its superior performance.
- This finding highlights the potential of exploring less common polymorphs for advanced catalytic applications.
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