Multifunctional Inorganic Nanomaterials for Energy Applications explains the role of multifunctional nanomaterials in the field of energy and power generation applications. It focuses on the synthesis, fabrication, design, development and optimization of novel functional inorganic nanomaterials for energy storage and saving devices
1. Multifunctional Multiferroic Nanocomposites for Novel Device Applications 2. Energy Storage in Metal Oxides and Composites 3. Inorganic Nanomaterials: A Review of Synthesis, Properties and Recent Breakthroughs in Battery and Fuel Cell Technology 4. Green Synthesis of Silver-Based Nanomaterials and Nanocomposites, and Sustainable Breakthrough in the Battery Application: A Review 5. Electrochemical Studies of Hybrid Nanovanadates and Nanotungstates 6. Nanohybrid Titanates and Phosphates for Energy Applications 7. Design and Development of Novel Nanoferrite and Metal Oxide Composites for Energy Applications: A Review 8. Battery and Fuel Cell Applications: Nanohybrid Aluminates, Ferrites, and Vanadates 9. The Role of Inorganic Nanomaterials in Energy Storage Devices 10. Overview of Metal Oxide Nanocomposites for Supercapacitor Applications: Perspectives and Progress 11. CeO2: Tb3+ Nanophosphor for Display Applications 12. Synthesis of Novel Nanocomposites for the Development of 3-G Dye-Sensitized Solar Cells 13. Perovskite-Spinel Oxide Nanocomposites for Optoelectronic Applications 14. Synthesis and Characterization of Pure and Doped Titanium Oxide Nanoparticles for Catalysis 15. Lanthanum-Based Compounds Promoted by Carbon Substrates for Catalytic Applications 16. Catalysis for Environmental and Energy Applications: The Potential of Multifunctional Nanomaterials 17. Review of Ferrite Nanocomposites as Adsorbents of Heavy Metal Ions from Aqueous Solutions 18. Iron-Based Catalysts for FischerTropsch Synthesis for Light Olefins Production from Syngaslã.