Buch, Englisch, 336 Seiten, Format (B × H): 156 mm x 234 mm
Buch, Englisch, 336 Seiten, Format (B × H): 156 mm x 234 mm
ISBN: 978-1-041-23088-5
Verlag: Taylor & Francis Ltd
Bioderived and Synthetic Hydrogen Storage Materials presents innovative approaches for developing efficient, safe, and cost-effective hydrogen storage technologies. It demonstrates how the combination of biosynthesized and engineered nanomaterials can overcome hydrogen’s inherent storage challenges of low density and high diffusivity.
Covering physical, chemical, and hybrid storage methods, this book showcases how waste biomass and plastic can be transformed into functional hydrogen storage materials through sustainable processes. It addresses metal hydrides, complex hydrides, carbon-based materials, and metal-organic frameworks while expanding on the emerging application of 3D printing in fabricating optimized storage structures. Readers will gain insight into the complete development pathway for next-generation storage materials from precursor selection and biosynthesis to functionalization, thermal activation, and performance testing.
Graduate students and researchers in materials science and energy engineering, as well as industry professionals developing sustainable energy technologies, waste valorization processes, and nanomaterials for energy systems, will find this book a useful reference.
Zielgruppe
Undergraduate Advanced
Autoren/Hrsg.
Fachgebiete
- Technische Wissenschaften Energietechnik | Elektrotechnik Alternative und erneuerbare Energien
- Technische Wissenschaften Technik Allgemein Nanotechnologie
- Technische Wissenschaften Maschinenbau | Werkstoffkunde Technische Mechanik | Werkstoffkunde
- Technische Wissenschaften Maschinenbau | Werkstoffkunde Maschinenbau Mechatronik, Mikrosysteme (MEMS), Nanosysteme
Weitere Infos & Material
1. Overview of Hydrogen Storage. 2. Approaches to Hydrogen Storage Using Biosynthesized and Synthetic Synergies: Materials, Principles, Sustainability, and Future Directions. 3. Bioderived Carbons and Bio-Hybrids for Hydrogen Storage: From Promise to Predictability. 4. Conversion of Waste as Feedstock for Hydrogen Storage. 5. Chemical Hydrogen Storage from Waste Conversion. 6. Challenges and Limitations in Using Waste as Feedstock for Hydrogen. 7. Advanced Biosynthesized Nanomaterials for Hydrogen Storage. 8. Synergistic Integration of Biosynthesized and Synthetic Nanomaterials. 9. Next-Generation Biosynthesized and Synthetic Nanomaterials for Hydrogen Storage. 10. Conclusion.




