Nanomaterials for Advanced Energy and Power Storage Devices (eBook)

Artikelnummer: 978-0-7503-4901-7
Einband: Adobe Digital Editions
Verfügbarkeit: Download, sofort verfügbar (Link per E-Mail)
CHF 205.10
decrease increase

Table of Contents:

Chapter 1: Nanomaterials for static and dynamic flow supercapacitors

1.0 Introduction

1.1 Classification based on working principle

1.2 Classification based on morphology

1.3 Materials used as substrates in flexible supercapacitors

1.4 Materials used for making the electrode

1.5 Materials used as the electrolyte

1.6 Electrochemical flow capacitor

1.7 Conclusion

Chapter 2: Emerging technological advancements in thermal energy storage

2.1 Introduction

2.2 TES Technologies

2.3 Latent heat storage systems

2.4 Applications of sensible thermal energy storage

2.5 Sensible thermal energy storage

2.6 Latent heat energy storage

Chapter 3: Quantum dots as an efficient supercapacitor for modern world

3.1 Introduction

3.2 Synthesis of carbon quantum dots

3.3 Synthesis of Graphene quantum dots

3.4 Carbon quantum dots for supercapacitors

3.5 Graphene quantum dots for supercapacitors

3.6 Conclusion

Chapter 4: Importance of redox active electrolyte for the next generation energy storage system

4.1 Introduction

4.2 Charge storage principles of Redox electrolytes contains ECs

4.3 Mechanism of diffusion, adsorption, and kinetics of redox electrolyte

4.4 Categories of redox electrolyte

4.4.1 Aqueous systems

4.4.1.1 Anion redox electrolytes

4.4.1.2 Cation redox electrolytes

4.4.1.3 Neutral redox electrolytes

4.4.2 Non-aqueous electrolyte

4.4.2.1 Ionic liquid based redox electrolytes

4.4.2.2 Gel polymer based redox electrolytes

4.5 Dual redox electrolyte non-flow system

4.6 Catholyte and anolyte based redox electrolyte

4.7 Conclusion

Chapter 5: Conclusion on current trends in energy storage system

5.1 Mechanical energy storage

5.2 Heat energy storage

5.3 Electrochemical energy storage

5.4 Electromagnetic energy storage

5.5 Chemical energy storage

5.6 Hydrogen energy storage

5.7 Synthetic gas

5.8 Solar fuels

5.9 Future aspects of energy storage systems

Table of Contents:

Chapter 1: Nanomaterials for static and dynamic flow supercapacitors

1.0 Introduction

1.1 Classification based on working principle

1.2 Classification based on morphology

1.3 Materials used as substrates in flexible supercapacitors

1.4 Materials used for making the electrode

1.5 Materials used as the electrolyte

1.6 Electrochemical flow capacitor

1.7 Conclusion

Chapter 2: Emerging technological advancements in thermal energy storage

2.1 Introduction

2.2 TES Technologies

2.3 Latent heat storage systems

2.4 Applications of sensible thermal energy storage

2.5 Sensible thermal energy storage

2.6 Latent heat energy storage

Chapter 3: Quantum dots as an efficient supercapacitor for modern world

3.1 Introduction

3.2 Synthesis of carbon quantum dots

3.3 Synthesis of Graphene quantum dots

3.4 Carbon quantum dots for supercapacitors

3.5 Graphene quantum dots for supercapacitors

3.6 Conclusion

Chapter 4: Importance of redox active electrolyte for the next generation energy storage system

4.1 Introduction

4.2 Charge storage principles of Redox electrolytes contains ECs

4.3 Mechanism of diffusion, adsorption, and kinetics of redox electrolyte

4.4 Categories of redox electrolyte

4.4.1 Aqueous systems

4.4.1.1 Anion redox electrolytes

4.4.1.2 Cation redox electrolytes

4.4.1.3 Neutral redox electrolytes

4.4.2 Non-aqueous electrolyte

4.4.2.1 Ionic liquid based redox electrolytes

4.4.2.2 Gel polymer based redox electrolytes

4.5 Dual redox electrolyte non-flow system

4.6 Catholyte and anolyte based redox electrolyte

4.7 Conclusion

Chapter 5: Conclusion on current trends in energy storage system

5.1 Mechanical energy storage

5.2 Heat energy storage

5.3 Electrochemical energy storage

5.4 Electromagnetic energy storage

5.5 Chemical energy storage

5.6 Hydrogen energy storage

5.7 Synthetic gas

5.8 Solar fuels

5.9 Future aspects of energy storage systems

Schreiben Sie Ihre eigene Bewertung
  • Nur registrierte Benutzer können Produkte bewerten
*
*
Schlecht
Sehr gut
*
*
*
*
VerlagInstitute of Physics Publishing
EinbandAdobe Digital Editions
Erscheinungsjahr2024
Seitenangabe200 S.
AusgabekennzeichenEnglisch
AbbildungenWith figures in colour and black and white
Masse3'386 KB
PlattformEPUB
AutorSubramanian, K. R. V. (Hrsg.) / Sriraam, N. (Hrsg.) / Rao, T. Nageswara (Hrsg.) / Rao, Aravinda CL. (Hrsg.)

Über den Autor K. R. V. (Hrsg.) Subramanian

K. R. V. Subramanian received the Ph.D. degree from Cambridge University, Cambridge, U.K., in 2006, specializing in nanotechnology. He is a Professor and HOD with the Mechanical Engineering Department and the Head of Research and Development at the Ramaiah Institute of Technology, Bengaluru, India. He has over 30 years of academic and industrial experience and has published over 150 journal and conference papers, 17 patents, 5 textbooks authored. He has been a principal investigator for many government-funded research projects.Dr Niranjan Murthy completed his PHd in heat transfer from JNTU, Hyderabad in the year 2013. He is an experienced Mechanical Engineering academician and researcher with 28 years of teaching and research experience in thermal engineering, jet impingement cooling, turbomachinery, and heat transfer systems. He has proven contributions in research, book authoring, lab modernization, conference coordination, and mentoring of engineering and PhD students. He possesses industry experience and strong expertise in experimental heat transfer and cooling methodologies for advanced engineering applications. He has published over 30 journal publications in international journals, 4 patents, 14 textbooks authored and also secured funded projects from AICTE.

Weitere Titel von K. R. V. (Hrsg.) Subramanian

Produktbewertungen
Nur registrierte Benutzer können Produkte bewerten