Handbook of Sodium-Ion Batteries
Materials and Characterization
Herausgeber: Zhao, George; Gaddam, Rohit R.
Handbook of Sodium-Ion Batteries
Materials and Characterization
Herausgeber: Zhao, George; Gaddam, Rohit R.
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This book comprises 13 chapters that discuss the fundamental challenges, electrode materials, electrolytes, separators, advanced instrumental analysis techniques, and computational methods for sodium-ion batteries from renowned scientists. It is a combination of all aspects associated with sodium-ion batteries and can be used as a handbook.
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This book comprises 13 chapters that discuss the fundamental challenges, electrode materials, electrolytes, separators, advanced instrumental analysis techniques, and computational methods for sodium-ion batteries from renowned scientists. It is a combination of all aspects associated with sodium-ion batteries and can be used as a handbook.
Hinweis: Dieser Artikel kann nur an eine deutsche Lieferadresse ausgeliefert werden.
Hinweis: Dieser Artikel kann nur an eine deutsche Lieferadresse ausgeliefert werden.
Produktdetails
- Produktdetails
- Verlag: Jenny Stanford Publishing
- Seitenzahl: 744
- Erscheinungstermin: 31. Januar 2023
- Englisch
- Abmessung: 159mm x 237mm x 43mm
- Gewicht: 1348g
- ISBN-13: 9789814968157
- ISBN-10: 9814968153
- Artikelnr.: 66266829
- Verlag: Jenny Stanford Publishing
- Seitenzahl: 744
- Erscheinungstermin: 31. Januar 2023
- Englisch
- Abmessung: 159mm x 237mm x 43mm
- Gewicht: 1348g
- ISBN-13: 9789814968157
- ISBN-10: 9814968153
- Artikelnr.: 66266829
Rohit R. Gaddam is an assistant professor at the Department of Chemical Engineering in the Indian Institute of Science Education and Research (IISER), Bhopal, India. He completed his PhD under Prof. George Zhao at the University of Queensland (UQ), Australia, on alkali-ion batteries. He was awarded the IPRS and UQ Centennial Scholarships for his PhD. He also briefly pursued his research at Washington University in St. Louis, USA, and the CSIR-Indian Institute of Chemical Technology, Hyderabad, India. He was the recipient of the prestigious Alexander von Humboldt Fellowship to pursue his research in the field of energy storage at the Technical University of Munich, Germany. Dr Gaddam's current research focuses on advanced functional materials synthesis for energy applications. X. S. (George) Zhao is a professor and an ARC Australian Laureate Fellow of the School of Chemical Engineering at UQ. He has also been an ARC Future Fellow (2011-2014) and a UQ Vice Chancellor's Research and Teaching Fellow (2014-2017). Prof. Zhao's research focuses on nanoporous materials for sustainable energy storage and conversion as well as for environmentally friendly chemical processes and products. The overall objective of his research programs is to develop tailor-designed advanced porous materials with desired structural, interfacial, and morphological properties for applications in fields ranging from energy storage and conversion, water and air purification, adsorption, heterogeneous catalysis, and seawater desalination to photonics. Prof. Zhao is a recipient of several honors and awards, including 2nd prize of the Chinese Academy of Sciences, Global Highly Cited Researcher, American Carbon Society Award, and Fellow of the Royal Society of Chemistry.
1. Challenges and Opportunities in Sodium
Ion Batteries: An Introduction 2. Principles of Battery Electrochemistry 3. Cathode Materials for Sodium
Ion Batteries 4. Prussian Blue Analogues as Cathode Materials for Sodium
Ion Batteries 5. Polymer Electrodes for Sodium
Ion Batteries 6. Transition Metal Dichalcogenides as Active Anode Materials for Sodium
Ion Batteries 7. Effect of Polymeric Binders on Sodium
Ion Storage Performance of Electrode Materials 8. Electrolytes for Sodium
Ion Batteries 9. Cycling Stability of Sodium
Ion Batteries in Analogy to Lithium
Ion Batteries 10. Atomistic Modelling and Analysis of Electrolyte Properties for Sodium
Ion Batteries 11. Separators for Sodium
Ion Batteries 12. Advanced Electron Microscopy Characterization of Sodium
Ion Battery Materials 13. Synchrotron Radiation
Based X
ray Characterizations of Sodium
Ion Battery
Ion Batteries: An Introduction 2. Principles of Battery Electrochemistry 3. Cathode Materials for Sodium
Ion Batteries 4. Prussian Blue Analogues as Cathode Materials for Sodium
Ion Batteries 5. Polymer Electrodes for Sodium
Ion Batteries 6. Transition Metal Dichalcogenides as Active Anode Materials for Sodium
Ion Batteries 7. Effect of Polymeric Binders on Sodium
Ion Storage Performance of Electrode Materials 8. Electrolytes for Sodium
Ion Batteries 9. Cycling Stability of Sodium
Ion Batteries in Analogy to Lithium
Ion Batteries 10. Atomistic Modelling and Analysis of Electrolyte Properties for Sodium
Ion Batteries 11. Separators for Sodium
Ion Batteries 12. Advanced Electron Microscopy Characterization of Sodium
Ion Battery Materials 13. Synchrotron Radiation
Based X
ray Characterizations of Sodium
Ion Battery
1. Challenges and Opportunities in Sodium
Ion Batteries: An Introduction 2. Principles of Battery Electrochemistry 3. Cathode Materials for Sodium
Ion Batteries 4. Prussian Blue Analogues as Cathode Materials for Sodium
Ion Batteries 5. Polymer Electrodes for Sodium
Ion Batteries 6. Transition Metal Dichalcogenides as Active Anode Materials for Sodium
Ion Batteries 7. Effect of Polymeric Binders on Sodium
Ion Storage Performance of Electrode Materials 8. Electrolytes for Sodium
Ion Batteries 9. Cycling Stability of Sodium
Ion Batteries in Analogy to Lithium
Ion Batteries 10. Atomistic Modelling and Analysis of Electrolyte Properties for Sodium
Ion Batteries 11. Separators for Sodium
Ion Batteries 12. Advanced Electron Microscopy Characterization of Sodium
Ion Battery Materials 13. Synchrotron Radiation
Based X
ray Characterizations of Sodium
Ion Battery
Ion Batteries: An Introduction 2. Principles of Battery Electrochemistry 3. Cathode Materials for Sodium
Ion Batteries 4. Prussian Blue Analogues as Cathode Materials for Sodium
Ion Batteries 5. Polymer Electrodes for Sodium
Ion Batteries 6. Transition Metal Dichalcogenides as Active Anode Materials for Sodium
Ion Batteries 7. Effect of Polymeric Binders on Sodium
Ion Storage Performance of Electrode Materials 8. Electrolytes for Sodium
Ion Batteries 9. Cycling Stability of Sodium
Ion Batteries in Analogy to Lithium
Ion Batteries 10. Atomistic Modelling and Analysis of Electrolyte Properties for Sodium
Ion Batteries 11. Separators for Sodium
Ion Batteries 12. Advanced Electron Microscopy Characterization of Sodium
Ion Battery Materials 13. Synchrotron Radiation
Based X
ray Characterizations of Sodium
Ion Battery