Buch, Englisch, 314 Seiten, Format (B × H): 160 mm x 241 mm, Gewicht: 709 g
Reihe: Green Energy and Technology
Designing Highly Efficient Semiconductor Materials
Buch, Englisch, 314 Seiten, Format (B × H): 160 mm x 241 mm, Gewicht: 709 g
Reihe: Green Energy and Technology
ISBN: 978-981-961920-7
Verlag: Springer Nature Singapore
This book highlights crucial parameters and strategies in photocatalytic water splitting. The process utilizes light energy to drive the separation of water into hydrogen and oxygen with the help of a photocatalyst. The efficiency and performance of catalytic activities are determined by various parameters supported by material characterizations. Commonly, the catalytic performances in visible-light photocatalytic water splitting are governed by bandgap energy, surface area, crystal structure, charge carrier dynamics, catalyst loading, cocatalyst, pH of solution, and reaction temperatures. However, covering all the requirements to obtain a highly efficient catalytic activity is an impossible task. Some recent strategies with promising results have been explored to improve and optimize the catalytic properties. In addition, various techniques for catalytic material characterizations, such as XRD, SEM, TEM, XPS, XANES, EXALFS, TRPL, TPC, EIS, and CV analysis, are also discussed. Finally, some related perspectives and outlook are discussed for future development.
Zielgruppe
Research
Autoren/Hrsg.
Fachgebiete
- Technische Wissenschaften Verfahrenstechnik | Chemieingenieurwesen | Biotechnologie Verfahrenstechnik, Chemieingenieurwesen
- Technische Wissenschaften Maschinenbau | Werkstoffkunde Technische Mechanik | Werkstoffkunde Werkstoffprüfung
- Technische Wissenschaften Maschinenbau | Werkstoffkunde Technische Mechanik | Werkstoffkunde Materialwissenschaft: Elektronik, Optik
- Naturwissenschaften Physik Thermodynamik Festkörperphysik, Kondensierte Materie
- Technische Wissenschaften Technik Allgemein Nanotechnologie
Weitere Infos & Material
1. Photocatalysis fundamental with essential parameters for a water-splitting process.- 2. Surface defect engineering in photocatalytic hydrogen evolution reaction.- 3 Composite semiconductor as a crucial strategy to enhance photocatalytic activities in hydrogen production.- 4. Surface plasmon resonance-based photocatalyst in evolving hydrogen fuel gas.- 5. Carbon-based nano photocatalyst with superior chemical and physical properties in enhancing hydrogen evolution reaction.