Recently, there has been a transition from fully carbonaceous positive electrodes for the aprotic lithium oxygen battery to alternative materials and the use of redox mediator additives, in an attempt to lower the large electrochemical overpotentials associated with the charge reaction. However, the stabilizing or catalytic effect of these materials can become complicated due to the presence of major side-reactions observed during dis(charge). Here, we isolate the charge reaction from the discharge by utilizing electrodes prefilled with commercial lithium peroxide with a crystallite size of about 200–800 nm. Using a combination of S/TEM, online mass spectrometry, XPS, and electrochemical methods to probe the nature of surface films on carbo...
The practical applications of non-aqueous lithium-oxygen batteries are impeded by large overpotentia...
The lithium-oxygen battery, of much interest because of its very high-energy density, presents many ...
The formation and decomposition of lithium peroxides (Li<sub>2</sub>O<sub>2</sub>) during cycling is...
One of the key problems hindering practical implementation of lithium–air batteries is caused by car...
One of the key problems hindering practical implementation of lithium–air batteries is caused by car...
The development of nonaqueous Li–oxygen batteries, which relies on the reversible reaction of Li + O...
In lithium oxygen (Li–O<sub>2</sub>) batteries, controlling the structure of lithium peroxide (Li<su...
Motivated by new applications including electric vehicles and the smart grid, interest in advanced l...
The electric vehicle itself today outlives its battery, necessitating battery replacement. Lithium t...
Recently, anionic activity, oxygen redox reaction, has been discovered in the electrochemical proces...
Lithium transition metal oxides are Li host structures used as cathodes for Li-ion batteries. Li is ...
New strategies and materials are needed to increase the energy and power capabilities of lithium sto...
With the increasing importance of electrified transport, the need for high energy density storage is...
Among the electrodes for Li‐ion batteries, Li4Ti5O12 (LTO) stands out as anode owing to its stabilit...
Lithium-oxygen (Li–O2) batteries can exhibit high theoretical energy density and be surely suitable ...
The practical applications of non-aqueous lithium-oxygen batteries are impeded by large overpotentia...
The lithium-oxygen battery, of much interest because of its very high-energy density, presents many ...
The formation and decomposition of lithium peroxides (Li<sub>2</sub>O<sub>2</sub>) during cycling is...
One of the key problems hindering practical implementation of lithium–air batteries is caused by car...
One of the key problems hindering practical implementation of lithium–air batteries is caused by car...
The development of nonaqueous Li–oxygen batteries, which relies on the reversible reaction of Li + O...
In lithium oxygen (Li–O<sub>2</sub>) batteries, controlling the structure of lithium peroxide (Li<su...
Motivated by new applications including electric vehicles and the smart grid, interest in advanced l...
The electric vehicle itself today outlives its battery, necessitating battery replacement. Lithium t...
Recently, anionic activity, oxygen redox reaction, has been discovered in the electrochemical proces...
Lithium transition metal oxides are Li host structures used as cathodes for Li-ion batteries. Li is ...
New strategies and materials are needed to increase the energy and power capabilities of lithium sto...
With the increasing importance of electrified transport, the need for high energy density storage is...
Among the electrodes for Li‐ion batteries, Li4Ti5O12 (LTO) stands out as anode owing to its stabilit...
Lithium-oxygen (Li–O2) batteries can exhibit high theoretical energy density and be surely suitable ...
The practical applications of non-aqueous lithium-oxygen batteries are impeded by large overpotentia...
The lithium-oxygen battery, of much interest because of its very high-energy density, presents many ...
The formation and decomposition of lithium peroxides (Li<sub>2</sub>O<sub>2</sub>) during cycling is...