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Novel Decavanadate Compounds for Lithium-Ion Batteries: En Route Towards a New Class of High-performance Energy Materials: BestMasters

Autor Simon Greiner
en Limba Engleză Paperback – 3 ian 2020
Simon Greiner investigates the molecular-level stabilization of polyoxovanadate (POV) compounds by rational design for the application as active cathode material in lithium-ion batteries. Formation of a complex hydrogen-bonding network locks the POVs in place and prevents thermal decomposition during electrode fabrication. The molecular vanadium oxide clusters can be electrochemically analyzed and show promising results for storage of multiple electrons per cluster, making these materials highly attractive for energy storage applications. Analytical methods comprise ATR-FTIR, powder and single-crystal XRD, electron microscopy, EDX, electrochemical analysis and battery testing.
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Specificații

ISBN-13: 9783658289843
ISBN-10: 3658289848
Pagini: 107
Ilustrații: XIX, 107 p. 71 illus., 9 illus. in color.
Dimensiuni: 148 x 210 mm
Greutate: 0.16 kg
Ediția:1st ed. 2020
Editura: Springer Fachmedien Wiesbaden
Colecția Springer Spektrum
Seria BestMasters

Locul publicării:Wiesbaden, Germany

Cuprins

Polyoxometalates in General and Polyoxovanadates in Particular.- Lithium-Ion Batteries in General.- Stabilization of POMs by Crystal Engineering.- Electrochemical Characterization and Battery Testing of POM-based Electrodes.

Notă biografică

Simon Greiner obtained his master’s degree in chemistry and management at Ulm University, Germany, in cooperation with the Helmholtz Institute Ulm for Electrochemical Energy Storage (HIU). He continues his work on POM-based energy storage materials in the research groups of Prof. Carsten Streb and Prof. Maximilian Fichtner.

Textul de pe ultima copertă

Simon Greiner investigates the molecular-level stabilization of polyoxovanadate (POV) compounds by rational design for the application as active cathode material in lithium-ion batteries. Formation of a complex hydrogen-bonding network locks the POVs in place and prevents thermal decomposition during electrode fabrication. The molecular vanadium oxide clusters can be electrochemically analyzed and show promising results for storage of multiple electrons per cluster, making these materials highly attractive for energy storage applications. Analytical methods comprise ATR-FTIR, powder and single-crystal XRD, electron microscopy, EDX, electrochemical analysis and battery testing.

Contents 
  • Polyoxometalates in General and Polyoxovanadates in Particular
  • Lithium-Ion Batteries in General
  • Stabilization of POMs by Crystal Engineering
  • Electrochemical Characterization and Battery Testing of POM-based Electrodes
Target Groups
  • Researchers and students in the fields of inorganic chemistry and energy materials
  • Practitioners in the application of inorganic chemistry and energy materials
The Author
Simon Greiner obtained his master’s degree in chemistry and management at Ulm University, Germany, in cooperation with the Helmholtz Institute Ulm for Electrochemical Energy Storage (HIU). He continues his work on POM-based energy storage materials in the research groups of Prof. Carsten Streb and Prof. Maximilian Fichtner.

Caracteristici

Publication in the field of natural sciences