Ye / Wang / Du | Hydrogen Production, Storage, and Utilization | Buch | 978-3-527-35469-6 | www.sack.de

Buch, Englisch, 496 Seiten, Format (B × H): 170 mm x 244 mm

Ye / Wang / Du

Hydrogen Production, Storage, and Utilization

From Materials to Systems Design and Commercialization
1. Auflage 2026
ISBN: 978-3-527-35469-6
Verlag: Wiley-VCH GmbH

From Materials to Systems Design and Commercialization

Buch, Englisch, 496 Seiten, Format (B × H): 170 mm x 244 mm

ISBN: 978-3-527-35469-6
Verlag: Wiley-VCH GmbH


Advanced hydrogen energy materials, electrochemical cells, and commercialization pathways in one reference

Bridging laboratory-scale catalyst development and industrial-scale membrane electrode assembly manufacturing remains a central challenge in hydrogen energy research. Hydrogen Production, Storage, and Utilization: From Materials to Systems Design and Commercialization, edited by Siyu Ye, a Fellow of the Canadian Academy of Engineering, provides a rigorous treatment of advanced materials for HOR, HER, ORR, and OER reactions alongside electrochemical cell design for both low-temperature and high-temperature operation.

The book reviews fundamentals, current bottlenecks, and future perspectives for key electrocatalytic materials used in fuel cells and water electrolysis. It details state-of-the-art characterization methods including synchrotron radiation and in-situ FTIR, examines artificial intelligence applications in materials and device development, and analyzes industrial production data to map commercialization progress in large-scale membrane electrode assembly manufacturing.

Readers will also find: - Systematic coverage of catalyst layer and MEA design principles for protonic exchange membrane fuel cells and electrolysis cells
- Detailed analysis of research advancements, technical bottlenecks, and remaining challenges across hydrogen energy material classes
- State-of-the-art characterization techniques including synchrotron radiation and in-situ FTIR applied to hydrogen energy systems
- Exploration of artificial intelligence methods accelerating the discovery and optimization of electrocatalytic materials and devices
- Industrial production data analysis presenting current developments in large-scale commercialization of hydrogen energy technologies

Materials scientists, electrochemists, solid state chemists, and physical chemists will find this reference directly applicable to their research and development work. By connecting electrocatalyst fundamentals with systems-level design and commercialization data, the book serves as a critical resource for advancing hydrogen energy technologies from the laboratory to industrial deployment.

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Autoren/Hrsg.


Weitere Infos & Material


Chapter 01. Production and application of hydrogen and oxygen
Chapter 02. Storage technology of hydrogen energy
Chapter 03. Advanced materials for hydrogen evolution reaction
Chapter 04. Advanced materials for hydrogen oxidation reaction
Chapter 05. Advanced materials for oxygen reduction reaction
Chapter 06. Advanced materials for oxygen evolution reaction
Chapter 07. Advances and challenges in PEMFC/WC
Chapter 08. Advances and challenges in P-SOFC/EC
Chapter 09. Advances and challenges in O-SOFC/EC
Chapter 10. Advanced characterization techniques in hydrogen energy research
Chapter 11. Machine learning guided research and development of key materials for water electrolysis and fuel cells
Chapter 12. Large scale manufacturing of membrane electrode assembly
Chapter 13. Applications of water electrolysis and fuel cells: thermal and power generation


Siyu Ye is a fellow of the Canadian Academy of Engineering, a professor at Guangzhou University, and a vice Chair and Chief Technology Officer at SinoHykey. He is recognized as a world-leading expert in electrocatalysis and catalyst layer/MEA design for fuel cells and water electrolysis, and has made significant contributions to the advancement of the modern protonic exchange membrane fuel cell and electrolysis cell.
 
Ning Wang is an associate professor at Guangzhou University. She obtained her Ph.D. at Hokkaido University, Japan. She is a recipient of the Pearl River Talents Overseas Young Talents Program and the Yangfan Plan Project (provincial-level talent programs). Her research focuses on the interdisciplinary intersection of AI with key materials and devices for hydrogen energy and fuel cells. Over the past five years, she has published more than 20 papers as first/corresponding author in high-impact journals including Adv. Mater., eScience, Nano-Micro Lett., Adv. Energy Mater., Adv. Funct. Mater., and so on. She has received the China Energy Catalysis Rising Star Award and the First Prize in the Guangzhou University Young Teacher Teaching Competition. She serves as a Young Editorial Board Member for journals such as eScience and Nano-Micro Lett., and as a reviewer for Nature Communications, Advanced Energy Materials, and other journals.
 
Lei Du is an Associate Professor at Guangzhou University. Before moving to Guangzhou, he was a postdoctoral fellow at Institut National de la Recherche Scientifique (Canada) and a lecturer at Harbin Institute of Technology (China). He received Ph.D. degree in 2017 from Harbin Institute of Technology. His main research interests include electrocatalysis in energy conversion and storage - new materials and new mechanisms, electrochemical device integration. He is the recipient of the Outstanding Youth Project of Natural Science Foundation of Guangdong Province, and is named to the Elsevier/Stanford University's Top 2% Scientist list (2023-2025).



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