Litcius/Paper detail

Recent advances in synthesis and application of Magnéli phase titanium oxides for energy storage and environmental remediation

Sarah Ekanayake, Haoxin Mai, Dehong Chen, Rachel A. Caruso

2025Chemical Science27 citationsDOIOpen Access PDF

Abstract

, facilitating their diverse applications. Their exceptional electrical conductivity, stability in harsh chemical environments and capability to generate hydroxyl radicals make them highly valuable in electrochemical applications. Additionally, their high specific capacity and corrosion resistance make them ideal for energy storage facilities. These properties, combined with excellent solar light absorption, have led to their widespread use in electrochemical, photochemical, photothermal, catalytic and energy storage applications. To provide a complete overview of the formation, properties, and environmental- and energy-related applications of Magnéli phase titanium suboxides, this review initially highlights the crystal structure and the physical, thermoelectrical and optical properties of these materials. The conventional and novel strategies developed to synthesise these materials are then discussed, along with potential approaches to overcome challenges associated with current issues and future low-energy fabrication methods. Finally, we provide a comprehensive overview of their applications across various fields, including environmental remediation, energy storage, and thermoelectric and optoelectronic technologies. We also discuss promising new directions for the use of Magnéli phase titanium suboxides and solutions to challenges in energy and environment-related applications, and provide guidance on how these materials can be developed and utilised to meet diverse research application needs. By making use of control measures to mitigate the potential hazards associated with their nanoparticles, Magnéli phases can be considered as versatile materials with potential for next generation energy needs.

Topics & Concepts

Environmental remediationTitaniumPhase (matter)Materials scienceEnergy storageNanotechnologyChemical engineeringMetallurgyChemistryContaminationPhysicsEngineeringOrganic chemistryThermodynamicsBiologyEcologyPower (physics)TiO2 Photocatalysis and Solar CellsCatalytic Processes in Materials ScienceAdvanced Photocatalysis Techniques