Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Lithium Sulfur Battery: Current Status and Future Prospects

View through CrossRef
Lithium sulfur battery is a promising candidate for the next generation rechargeable battery since the negative electrode, lithium, and the cathode, sulfur, have the highest theoretical capacities of 3862 and of 1672 mAh/g, respectively, among any other active materials, e.g., graphite (372 mAh/g) or LiCoO 2 (274 mAh/g, only about 50% is practically available). However, there are several challenging issues in order to realize the use of this type of next generation battery. First, the lithium metal anode has an intrinsic safety issue, dendrite growth that can result in internal short circuit failure. Second, the sulfur cathode is a very insulating material; therefore, sulfur-based cathodes need a large amount of conducting additives, resulting in the decrease in the practically available gravimetric capacity per the unit mass of cathode composite. Third, lithium polysulfides, reduced (discharged) forms of sulfur, dissolve into an electrolyte solution, resulting in capacity fading. For realistic battery applications, these issues from both the anode and the cathode need to be solved or mitigated. To this end, we integrate three practically possible solutions: (1) manufacture-friendly pre-lithiation of anode or cathode materials, (2) practically optimal choice of conducting agent and of the method for sulfur-conductive-agent integration, and (3) stabilization of discharged forms of the cathode. In addition, we are tackling with a well-known issue among lithium sulfur battery researchers, low mass-loading of sulfur: sulfur-based cathode, 2 mg/cm 2 ; LiCoO 2 -based cathode, 20 mg/cm 2 , graphite-based anode, 10 mg/cm 2 . In this presentation, the current status of our research and future prospects will be introduced. Figure 1
Title: Lithium Sulfur Battery: Current Status and Future Prospects
Description:
Lithium sulfur battery is a promising candidate for the next generation rechargeable battery since the negative electrode, lithium, and the cathode, sulfur, have the highest theoretical capacities of 3862 and of 1672 mAh/g, respectively, among any other active materials, e.
g.
, graphite (372 mAh/g) or LiCoO 2 (274 mAh/g, only about 50% is practically available).
However, there are several challenging issues in order to realize the use of this type of next generation battery.
First, the lithium metal anode has an intrinsic safety issue, dendrite growth that can result in internal short circuit failure.
Second, the sulfur cathode is a very insulating material; therefore, sulfur-based cathodes need a large amount of conducting additives, resulting in the decrease in the practically available gravimetric capacity per the unit mass of cathode composite.
Third, lithium polysulfides, reduced (discharged) forms of sulfur, dissolve into an electrolyte solution, resulting in capacity fading.
For realistic battery applications, these issues from both the anode and the cathode need to be solved or mitigated.
To this end, we integrate three practically possible solutions: (1) manufacture-friendly pre-lithiation of anode or cathode materials, (2) practically optimal choice of conducting agent and of the method for sulfur-conductive-agent integration, and (3) stabilization of discharged forms of the cathode.
In addition, we are tackling with a well-known issue among lithium sulfur battery researchers, low mass-loading of sulfur: sulfur-based cathode, 2 mg/cm 2 ; LiCoO 2 -based cathode, 20 mg/cm 2 , graphite-based anode, 10 mg/cm 2 .
In this presentation, the current status of our research and future prospects will be introduced.
Figure 1.

Related Results

Electrode Design for Lithium-Sulfur Batteries Featuring High Sulfur Loading and Low Electrolyte
Electrode Design for Lithium-Sulfur Batteries Featuring High Sulfur Loading and Low Electrolyte
The limitations encountered by insertion-compound cathodes for offering lithium batteries with an enhanced energy density at an affordable cost allow the conversion-reaction cathod...
Li/S
Li/S
AbstractLithium–sulfur batteries are among the most promising energy‐storage devices because of their high charge‐storage capacity, low cost, and the wide availability of sulfur. T...
Lithium Prospectivity in the Northeast German and Thuringian Ba-sins
Lithium Prospectivity in the Northeast German and Thuringian Ba-sins
Over the years many boreholes have been drilled into the Northeast German Basin (NEGB) in pursuit of the exploration of hydrocarbons. As well as gaining important information regar...
Application status and future of multi-scale numerical models for lithium ion battery
Application status and future of multi-scale numerical models for lithium ion battery
Lithium ion battery is nowadays one of the most popular energy storage devices due to its high energy, power density and cycle life characteristics. It has been known that the over...
Towards Safer Batteries- 4D Imaging of Abuse Mechanisms in Lithium-Ion Batteries Using Synchrotron X-Ray Computed Tomography
Towards Safer Batteries- 4D Imaging of Abuse Mechanisms in Lithium-Ion Batteries Using Synchrotron X-Ray Computed Tomography
Higher energy density materials are being pushed by the research community to make lithium-ion batteries a better competitor to chemical fossil fuels for transport applications. Th...
Sulfur Metabolism in Plants
Sulfur Metabolism in Plants
Abstract Sulfur is an essential element found in plants in a variety of compounds with many different functions. The sulfur‐containing amino aci...
Modeling active cell balancing of lithium-ion bat-teries in MATLAB/Simulink
Modeling active cell balancing of lithium-ion bat-teries in MATLAB/Simulink
Problem. The article is devoted to the study of active balancing of lithium-ion battery cells. Active balancing of lithium-ion battery cells is crucial for ensuring high efficiency...
Lithium Surface Modification for Enhanced Cycle Life and Safety of Lithium Batteries
Lithium Surface Modification for Enhanced Cycle Life and Safety of Lithium Batteries
Lithium (Li) metal is an ideal anode material for rechargeable batteries due to its extremely high theoretical specific capacity (3860 mAh/g), low density (0.59 g/cm3) and the lowe...

Back to Top