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Nanostructured MoO3 for Efficient Energy and Environmental Catalysis.

Yuhua Zhu1, Yuan Yao1, Zhu Luo1

  • 1Key Laboratory of Pesticide & Chemical Biology of Ministry of Education, Institute of Environmental and Applied Chemistry, College of Chemistry, Central China Normal University, Wuhan 430079, China.

Molecules (Basel, Switzerland)
|December 22, 2019
PubMed
Summary

Nanostructured Molybdenum Trioxide (MoO3) shows promise as an active catalyst and support material for energy and environmental applications. Its unique properties offer potential to replace noble metal catalysts in various catalytic processes.

Keywords:
crystalline structureenergy conversionenvironmental catalysisfuel cellsmorphologynanostructured MoO3photocatalytic degradationselective thermocatalysiswater splitting

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Area of Science:

  • Materials Science
  • Catalysis
  • Nanotechnology

Background:

  • Molybdenum Trioxide (MoO3) possesses tunable bandgap, unique semiconducting properties, and multiple valence states.
  • These characteristics make MoO3 a promising candidate for catalytic applications.
  • Nanostructured MoO3 materials are of particular interest due to their enhanced surface area and reactivity.

Purpose of the Study:

  • To comprehensively review the crystal structure and properties of nanostructured MoO3.
  • To highlight recent advancements in the application of nanostructured MoO3 for energy and environmental catalysis.
  • To discuss current challenges and future research directions for MoO3-based catalysts.

Main Methods:

  • Literature review and synthesis of existing research on nanostructured MoO3.
  • Analysis of structure-property relationships relevant to catalysis.
  • Summarization of experimental and theoretical findings in energy and environmental catalysis.

Main Results:

  • Nanostructured MoO3 exhibits high activity as a metal oxide catalyst and support material.
  • It presents a viable alternative to expensive noble metal catalysts.
  • Significant progress has been made in its application in energy conversion and environmental remediation.

Conclusions:

  • Nanostructured MoO3 holds substantial potential for diverse catalytic applications in energy and environmental sectors.
  • Further research is needed to overcome existing challenges and fully exploit its capabilities.
  • Continued investigation into MoO3-based materials will drive innovation in sustainable catalysis.