Javascript must be enabled to continue!
Capacity Fade Analysis of Sulfur Cathodes in Lithium–Sulfur Batteries
View through CrossRef
Rechargeable lithium–sulfur (Li–S) batteries are receiving ever‐increasing attention due to their high theoretical energy density and inexpensive raw sulfur materials. However, their rapid capacity fade has been one of the key barriers for their further improvement. It is well accepted that the major degradation mechanisms of S‐cathodes include low electrical conductivity of S and sulfides, precipitation of nonconductive Li2S2 and Li2S, and poly‐shuttle effects. To determine these degradation factors, a comprehensive study of sulfur cathodes with different amounts of electrolytes is presented here. A survey of the fundamentals of Li–S chemistry with respect to capacity fade is first conducted; then, the parameters obtained through electrochemical performance and characterization are used to determine the key causes of capacity fade in Li–S batteries. It is confirmed that the formation and accumulation of nonconductive Li2S2/Li2S films on sulfur cathode surfaces are the major parameters contributing to the rapid capacity fade of Li–S batteries.
Title: Capacity Fade Analysis of Sulfur Cathodes in Lithium–Sulfur Batteries
Description:
Rechargeable lithium–sulfur (Li–S) batteries are receiving ever‐increasing attention due to their high theoretical energy density and inexpensive raw sulfur materials.
However, their rapid capacity fade has been one of the key barriers for their further improvement.
It is well accepted that the major degradation mechanisms of S‐cathodes include low electrical conductivity of S and sulfides, precipitation of nonconductive Li2S2 and Li2S, and poly‐shuttle effects.
To determine these degradation factors, a comprehensive study of sulfur cathodes with different amounts of electrolytes is presented here.
A survey of the fundamentals of Li–S chemistry with respect to capacity fade is first conducted; then, the parameters obtained through electrochemical performance and characterization are used to determine the key causes of capacity fade in Li–S batteries.
It is confirmed that the formation and accumulation of nonconductive Li2S2/Li2S films on sulfur cathode surfaces are the major parameters contributing to the rapid capacity fade of Li–S batteries.
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...
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...
Carbon velvet field-emission cathode
Carbon velvet field-emission cathode
Explosive field emission cathodes comprise an important class of cathodes for high power microwave tubes, having the advantages of light weight as well as requiring no heater for e...
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...
Transition Metal Oxyfluorides for Next‐Generation Rechargeable Batteries
Transition Metal Oxyfluorides for Next‐Generation Rechargeable Batteries
AbstractTransition metal oxyfluorides are attracting much attention for next‐generation rechargeable batteries, including lithium‐ion batteries and those beyond lithium‐ion batteri...
Electrochemical Characteristics of Novel Fluorinated Ether Solvent for Lithium-Sulfur Batteries
Electrochemical Characteristics of Novel Fluorinated Ether Solvent for Lithium-Sulfur Batteries
Introduction
In recent years, the development of electric airplanes, large drones, and other equipment has created a need for batteries with high ene...
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...
Role of ionic liquids as electrolyte additives in enhancing the electrochemical performances of Lithium Sulfur Batteries
Role of ionic liquids as electrolyte additives in enhancing the electrochemical performances of Lithium Sulfur Batteries
The lithium-sulfur batteries (Li-S) found an unprecedented advantage in the post-lithium era owing to their exceptional discharge capacity, low cost, and environmental friendliness...

