Chukwuati / Ukoba / Jen | Bioderived and Synthetic Hydrogen Storage Materials | Buch | 978-1-041-23088-5 | www.sack.de

Buch, Englisch, 336 Seiten, Format (B × H): 156 mm x 234 mm

Chukwuati / Ukoba / Jen

Bioderived and Synthetic Hydrogen Storage Materials


1. Auflage 2026
ISBN: 978-1-041-23088-5
Verlag: Taylor & Francis Ltd

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.

Chukwuati / Ukoba / Jen Bioderived and Synthetic Hydrogen Storage Materials jetzt bestellen!

Zielgruppe


Undergraduate Advanced

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.


Christopher Chukwuati is a distinguished researcher in environmental chemistry based in South Africa. He specializes in designing and developing advanced nanostructured materials for various environmental and energy-related applications, including photocatalysis and water treatment. He has authored and co-authored articles in peer-reviewed journals. Additionally, Dr. Chukwuati is actively engaged in collaborative projects with Hydrox, a hydrogen generation company in South Africa, and continues to explore interdisciplinary solutions to pressing environmental challenges, such as photoelectrochemical water splitting for hydrogen generation.

Kingsley Ukoba is a Lecturer and Researcher in the Department of Mechanical Engineering Sciences at the University of Johannesburg, South Africa. He obtained a doctoral degree in Mechanical Engineering from the University of KwaZulu-Natal, Durban, South Africa. He coordinates the smart energy group for JENANO, headed by Prof. Tien-Chien Jen, and oversees a group of doctoral students, master’s, and undergraduate students of the South Africa Research Chair (SARCHI) of Green Hydrogen. Dr. Ukoba has won several individual and group grants, awards, and fellowships, including the one-million South African Rand grant by the SASOL/NRF Collaborative Research Grant for water treatment using Atomic Layer Deposition in 2021. He is also a 2022 Engineering for Change (E4C) fellow, sponsored by the American Society of Mechanical Engineers (ASME), to support an Impact Project around Climate Action. He has authored four books, numerous book chapters, and over 70 journal articles.

Tien-Chien Jen is the South Africa Research Chair (SARCHI) of Green Hydrogen and the former head of the Department of Mechanical Engineering Science at the University of Johannesburg, South Africa. He received his Ph.D. in Mechanical and Aerospace Engineering from the University of California, Los Angeles (UCLA), USA, specializing in the thermal aspects of grinding. He has received several competitive grants for his research, including those from the US National Science Foundation, the US Department of Energy, and the EPA. Prof. Jen is the Director of the newly established Atomic Layer Deposition Research Centre at the University of Johannesburg, South Africa, and he is currently leading the drive for the application of Atomic Layer Deposition equipment (the first of its kind in Africa) for various applications (hydrogen, renewable energy, thin films, etc.). He is a fellow of the American Society of Mechanical Engineers (ASME) and a member of the Academy of Science of South Africa (ASSAf). Prof. Jen has authored over 360 peer-reviewed articles, 16 book chapters, and 7 books.



Ihre Fragen, Wünsche oder Anmerkungen
Vorname*
Nachname*
Ihre E-Mail-Adresse*
Kundennr.
Ihre Nachricht*
Lediglich mit * gekennzeichnete Felder sind Pflichtfelder.
Wenn Sie die im Kontaktformular eingegebenen Daten durch Klick auf den nachfolgenden Button übersenden, erklären Sie sich damit einverstanden, dass wir Ihr Angaben für die Beantwortung Ihrer Anfrage verwenden. Selbstverständlich werden Ihre Daten vertraulich behandelt und nicht an Dritte weitergegeben. Sie können der Verwendung Ihrer Daten jederzeit widersprechen. Das Datenhandling bei Sack Fachmedien erklären wir Ihnen in unserer Datenschutzerklärung.