Layered materials for energy storage and conversion /

Bibliographic Details
Corporate Author: ProQuest (Firm)
Other Authors: Geng, Dongsheng, 1964- (Editor), Cheng, Yuan (Editor), Zhang, Gang (Nanotechnologist) (Editor)
Format: eBook
Language:English
Published: Cambridge : Royal Society of Chemistry, 2019.
Series:RSC smart materials ; 34.
Subjects:
Online Access:Connect to the full text of this electronic book
Table of Contents:
  • Intro; Title Page; Copyright Page; Contents; Chapter 1 MOF-derived Materials for Extremely Efficient Electrocatalysis; 1.1 Introduction; 1.2 MOF-derived Materials: Structures and Compositions; 1.2.1 Structures of MOF-derived Materials; 1.2.2 Compositions of MOF-derived Materials; 1.3 MOF-derived Materials for Efficient Electrocatalysis; 1.3.1 MOF-derived Electrocatalysts for the HER; 1.3.2 MOF-derived Electrocatalysts for the OER; 1.3.3 MOF-derived Electrocatalysts for the ORR; 1.3.4 MOF-derived Electrocatalysts for CO2 Reduction; 1.4 Summary and Perspectives; Acknowledgements; References
  • Chapter 2 Two-dimensional Layered Materials for High-performance Lithium-ion Batteries2.1 Introduction; 2.2 Graphene and Its Composites as Electrodes in LIBs; 2.2.1 Anodes; 2.2.2 Graphene-based Composite Cathodes; 2.3 2D Layered Anode Materials Beyond Graphene; 2.3.1 Xenes; 2.3.2 MXenes; 2.3.3 Transition Metal Chalcogenides; 2.4 Conclusions; Acknowledgements; References; Chapter 3 Intercalation-based Layered Materials for Rechargeable Sodium-ion Batteries; 3.1 Introduction to Sodium-ion Batteries (SIBs); 3.2 Intercalation Based Layered Electrode Materials for SIBs
  • 3.2.1 Layered Sodium Cobalt Oxide and Its Derivatives as Cathodes for SIBs3.2.2 Layered Sodium Nickel Oxide and Its Derivatives as Cathodes for SIBs; 3.2.3 Layered Sodium Manganese Oxide and Its Derivatives as Cathodes for SIBs; 3.2.4 Layered Sodium Iron Oxide and Its Derivatives as Cathodes for SIBs; 3.2.5 Layered Sodium Chromium Oxide and Its Derivatives as Cathodes for SIBs; 3.2.6 Layered Sodium Vanadium Oxide and Its Derivatives as Cathodes for SIBs; 3.2.7 Layered Sodium Titanium Oxide and Its Derivatives as Cathodes for SIBs; 3.2.8 Na-rich Layered Oxides as Cathode Materials for SIBs
  • 3.2.9 Layered Na2Ti3O7 as an Anode Material for SIBs3.3 Sodium-ion Full Cell Based on Layered Cathode Materials; 3.4 Summary; Acknowledgements; References; Chapter 4 Ionic Liquid Electrolytes for Graphene-based Supercapacitors with an Ultrahigh Energy Density; 4.1 Introduction; 4.2 Graphene-based Electrode Materials; 4.2.1 Functionalized/Functional Graphene Electrodes; 4.2.2 Graphene/Heteroatom Electrodes; 4.2.3 Graphene/Carbon Hybrid Material Electrodes; 4.2.4 Graphene/Polymer Hybrid Material Electrodes; 4.2.5 Conclusion; 4.3 Ionic Liquid Electrolytes; 4.3.1 Single Ionic Liquid Electrolytes
  • 4.3.2 Mixed Ionic Liquid Electrolytes4.3.3 Ionic Liquid/Polymer Electrolytes; 4.3.4 Conclusion; 4.4 Graphene/Ionic Liquid Supercapacitors: Investigation of the Interface of Graphene and Ionic Liquid; 4.5 Supercapacitors for the Next Generation of Wearable and Portable Electronic Devices; 4.6 Ionic Liquids for Other 2D-based Supercapacitors; 4.7 Conclusion; Acknowledgements; References; Chapter 5 Properties and Applications of Layered Thermoelectric Materials; 5.1 Introduction; 5.2 Bi2Te3; 5.2.1 Materials Development; 5.2.2 Device Performance; 5.3 SnSe; 5.4 BiCuSeO