Thin-film rechargeable lithium batteries using ceramic electrolyte and cathode materials have been fabricated by physical deposition techniques. The lithium phosphorous oxynitride electrolyte has exceptional electrochemical stability and a good lithium conductivity. The lithium insertion reaction of several different intercalation materials, amorphous V{sub 2}O{sub 5}, amorphous LiMn{sub 2}O{sub 4}, and crystalline LiMn{sub 2}O{sub 4} films, have been investigated using the completed cathode/electrolyte/lithium thin-film battery
Rechargeable solid-state lithium batteries were developed before [1] by physical vapour deposition (...
Abstract — This paper presents the microfabrica-tion and materials characterization of thin-film sol...
Liquid organic electrolytes cause safety problems due to an insufficient thermal and electrochemical...
Small thin-film rechargeable cells have been fabricated with a lithium phosphorus oxyniuide electrol...
This paper describes the optimization and the materials technology required for fabricating thin-fil...
Thin-film materials for solid-state rechargeable lithium batteries were fabricated by physical vapor...
Abstract This paper describes the optimization and the materials technology required for fabricatin...
AbstractThe several materials required for fabrication of thin-film solid-state rechargeable lithium...
The several materials required for fabrication of thin-film solid-state rechargeable lithium batteri...
Research over the last decade at Oak Ridge National Laboratory has led to the development of solid-s...
Low-temperature thin films of Li1+xV3O8 have been fabricated and tested in LiClO4/propylene carbonat...
Electrochemical lithium insertion/extraction properties at Li4Ti5O12 thin film/lithium phosphorus ox...
This paper presents the microfabrication and materials characterization of thin-film solid-state r...
Rechargeable solid-state lithium batteries were developed before [1] by physical vapour deposition. ...
AbstractRechargeable solid-state lithium batteries were developed before [1] by physical vapour depo...
Rechargeable solid-state lithium batteries were developed before [1] by physical vapour deposition (...
Abstract — This paper presents the microfabrica-tion and materials characterization of thin-film sol...
Liquid organic electrolytes cause safety problems due to an insufficient thermal and electrochemical...
Small thin-film rechargeable cells have been fabricated with a lithium phosphorus oxyniuide electrol...
This paper describes the optimization and the materials technology required for fabricating thin-fil...
Thin-film materials for solid-state rechargeable lithium batteries were fabricated by physical vapor...
Abstract This paper describes the optimization and the materials technology required for fabricatin...
AbstractThe several materials required for fabrication of thin-film solid-state rechargeable lithium...
The several materials required for fabrication of thin-film solid-state rechargeable lithium batteri...
Research over the last decade at Oak Ridge National Laboratory has led to the development of solid-s...
Low-temperature thin films of Li1+xV3O8 have been fabricated and tested in LiClO4/propylene carbonat...
Electrochemical lithium insertion/extraction properties at Li4Ti5O12 thin film/lithium phosphorus ox...
This paper presents the microfabrication and materials characterization of thin-film solid-state r...
Rechargeable solid-state lithium batteries were developed before [1] by physical vapour deposition. ...
AbstractRechargeable solid-state lithium batteries were developed before [1] by physical vapour depo...
Rechargeable solid-state lithium batteries were developed before [1] by physical vapour deposition (...
Abstract — This paper presents the microfabrica-tion and materials characterization of thin-film sol...
Liquid organic electrolytes cause safety problems due to an insufficient thermal and electrochemical...