A Lithium‐Sulfur Battery with a High Areal Energy Density
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- Type
- article
- Published
- 2014-09-01
- Cited by
- 209
- References
- 43
- OpenAlex
- https://openalex.org/W1984578572
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:94611897
Keywords
Polysulfide, Separator (oil production), Materials science, Dissolution, Electrolyte
References
- Lithium metal anodes for rechargeable batteries
- Stable-cycle and high-capacity conductive sulfur-containing cathode materials for rechargeable lithium batteries
- Effects of Cesium Cations in Lithium Deposition via Self-Healing Electrostatic Shield Mechanism
- Encapsulated Monoclinic Sulfur for Stable Cycling of Li–S Rechargeable Batteries
- Lithium storage in conductive sulfur-containing polymers
- Hollow carbon nanofiber-encapsulated sulfur cathodes for high specific capacity rechargeable lithium batteries.
- Lithium insertion into manganese spinels
- Structure and property relations between the polyacrylonitrile‐based prestabilized fibers and the partially carbonized fibers
- Dendrite-free lithium deposition via self-healing electrostatic shield mechanism.
- A highly ordered nanostructured carbon-sulphur cathode for lithium-sulphur batteries.
- One-dimensional carbon-sulfur composite fibers for Na-S rechargeable batteries operating at room temperature.
- Mussel- and Diatom-Inspired Silica Coating on Separators Yields Improved Power and Safety in Li-Ion Batteries
- Sulfur Composite Cathode Materials for Rechargeable Lithium Batteries
- Sulphur–TiO2 yolk–shell nanoarchitecture with internal void space for long-cycle lithium–sulphur batteries
- Smaller sulfur molecules promise better lithium-sulfur batteries.
- Sulfur-impregnated disordered carbon nanotubes cathode for lithium-sulfur batteries.
- Nanoarchitectured Graphene/CNT@Porous Carbon with Extraordinary Electrical Conductivity and Interconnected Micro/Mesopores for Lithium‐Sulfur Batteries
- Optical observation of Li dendrite growth in ionic liquid
- Improvement of Rate and Cycle Performence by Rapid Polyaniline Coating of a MWCNT/Sulfur Cathode
- A novel conductive polymer-sulfur composite cathode material for rechargeable lithium batteries
Cited by
- Electrochemical Properties of Sulfurized-Polyacrylonitrile Cathode for Lithium-Sulfur Batteries: Effect of Polyacrylic Acid Binder and Fluoroethylene Carbonate Additive.
- Poreless Separator and Electrolyte Additive for Lithium–Sulfur Batteries with High Areal Energy Densities
- Visualising the problems with balancing lithium-sulfur batteries by "mapping" internal resistance.
- Hybrid cathode architectures for lithium batteries based on TiS2 and sulfur
- Multi-functional separator/interlayer system for high-stable lithium-sulfur batteries: Progress and prospects
- Partially unzipped carbon nanotubes for high-rate and stable lithium–sulfur batteries
- Critical Link between Materials Chemistry and Cell-Level Design for High Energy Density and Low Cost Lithium-Sulfur Transportation Battery
- Interconnected carbon nanotube/graphene nanosphere scaffolds as free-standing paper electrode for high-rate and ultra-stable lithium-sulfur batteries
- A Facile Layer‐by‐Layer Approach for High‐Areal‐Capacity Sulfur Cathodes
- Direct Observation of the Redistribution of Sulfur and Polysufides in Li–S Batteries During the First Cycle by In Situ X‐Ray Fluorescence Microscopy
- Strong Surface‐Bound Sulfur in Conductive MoO2 Matrix for Enhancing Li–S Battery Performance
- High Energy Density Lithium–Sulfur Batteries: Challenges of Thick Sulfur Cathodes
- Anodes for Rechargeable Lithium‐Sulfur Batteries
- High mass loading, binder-free MXene anodes for high areal capacity Li-ion batteries
- Sulfur nanodots electrodeposited on ni foam as high-performance cathode for Li-S batteries.
- Radical or Not Radical: Revisiting Lithium–Sulfur Electrochemistry in Nonaqueous Electrolytes
- Janus Separator of Polypropylene‐Supported Cellular Graphene Framework for Sulfur Cathodes with High Utilization in Lithium–Sulfur Batteries
- Stabilization of Insoluble Discharge Products by Facile Aniline Modification for High Performance Li‐S Batteries
- Progress Towards Commercially Viable Li–S Battery Cells
- To mitigate self-discharge of lithium–sulfur batteries by optimizing ionic liquid electrolytes
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