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Angewandte Chemie International Edition, ISSN 1433-7851, 04/2017, Volume 56, Issue 18, pp. 4960 - 4964
The development of aprotic Li‐O2 batteries, which are promising candidates for high gravimetric energy storage devices, is severely limited by... 
water additive | hydroperoxide | superoxide | Li-O2 battery | Li-O | battery | Electrochemistry | Superoxide | Batteries | Computer storage devices | Electric potential | Side reactions | Byproducts | Electron transfer | Devices | Discharge | Storage batteries | Design modifications | Metal air batteries | Potassium channels (voltage-gated) | Hysteresis | Gravimetry | Energy storage
Journal Article
Advanced Materials, ISSN 0935-9648, 02/2018, Volume 30, Issue 5, pp. 1705571 - n/a
Journal Article
Advanced Materials, ISSN 0935-9648, 08/2017, Volume 29, Issue 30, pp. 1701568 - n/a
The aprotic Li–O2 battery has attracted a great deal of interest because theoretically it can store more energy than today's Li‐ion batteries. However, current... 
reversibility | strongly solvating electrolytes | Li–O2 batteries | LiPON‐protected Li anodes | batteries | LiPON-protected Li anodes | Li–O | Electrolytes | Batteries | Reaction products | Electrolytic cells | Charging | Anodic protection | Decomposition reactions | Metal air batteries | Lithium batteries | Oxidation | Passivity | Storage batteries | Rechargeable batteries
Journal Article
Advanced Energy Materials, ISSN 1614-6832, 05/2016, Volume 6, Issue 9, p. n/a
Rechargeable aprotic Li–O2 batteries are one of the most promising next‐generation battery technologies that can deliver extremely high energy density. In the... 
high energy density | electrochemistry | aprotic Li–O2 batteries | high‐efficiency | high-efficiency | batteries | aprotic Li-O | Electrochemistry | Electrochemical reactions | Batteries
Journal Article
Advanced Energy Materials, ISSN 1614-6832, 10/2017, Volume 7, Issue 19, p. n/a
It is confirmed that oxygen‐deficient black TiO2 can operate as a stable cathode for Li‐O2 batteries, where the morphology of black TiO2 was modified to be... 
black TiO2 | hierarchically ordered structures | Li–O2 batteries | Li2O2 toroid | stability | Lithium-ion batteries | Titanium oxides | Metal air batteries | Lithium | Respiratory system | Titanium dioxide | Rechargeable batteries
Journal Article
Advanced Materials, ISSN 0935-9648, 03/2013, Volume 25, Issue 9, pp. 1348 - 1352
Hierarchical carbon electrodes with highly aligned carbon nanotube (CNT) fibrils are fabricated, and it is demonstrated that these electrodes, with aligned... 
Li−O2 batteries | carbon nanotubes | cyclability | rate capability | fibrils | Li-O | batteries | Nanotubes | Batteries | Aerospace engineering
Journal Article
Advanced Materials, ISSN 0935-9648, 12/2015, Volume 27, Issue 48, pp. 8095 - 8101
A flexible freestanding air cathode inspired by traditional Chinese calligraphy art is built. When this novel electrode is employed as both a new concept... 
cathode materials | Li–O2 batteries | paper‐ink cathodes | foldable batteries | flexible batteries | paper-ink cathodes | Li-O | batteries | Printing-ink | Batteries
Journal Article
Advanced Materials, ISSN 0935-9648, 01/2018, Volume 30, Issue 1, pp. 1704841 - n/a
The safety hazards and cycle instability of lithium metal anodes (LMA) constitute significant barriers to progress in lithium metal batteries. This situation... 
reversibility | lithium metal anode | solid electrolyte interphase | Li–O2 battery | electrolyte engineering | Electrolytes | Batteries | Stability | Metal air batteries | Lithium | Solid electrolytes | Hazards | Dendritic structure | Cathodes
Journal Article
Advanced Energy Materials, ISSN 1614-6832, 10/2017, Volume 7, Issue 19, p. n/a
This paper introduces oxygen‐deficient black TiO2 with hierarchically ordered porous structure fabricated by a simple hydrogen reduction as a carbon‐ and... 
black TiO2 | hierarchically ordered structures | Li–O2 batteries | Li2O2 toroid | stability | toroid | black TiO | batteries | Li–O | Hydrogen | Electrolytes | Electrical conductivity | Hydrogen storage | Oxygen | Stability | Batteries | Lattice vacancies | Hydrogen reduction | Titanium oxides | Electrodes | Flux density | Electrical resistivity | Metal air batteries | Oxidation | Titanium dioxide
Journal Article