Composite polymer electrolytes (CPEs) strike an effective balance between ionic conductivity and mechanical flexibility for lithium-ion solid-state batteries. Long-term performance, however, is limited by capacity fading after hundreds of charge and discharge cycles. The causes of performance degradation include multiple contributing factors such as dendrite formation, physicochemical changes in electrolytes, and structural remodeling of porous electrodes. Among the many factors that contribute to performance degradation, the effect of stress specifically on the composite electrolyte is not well understood. This study examines the mechanical changes in a poly(ethylene oxide) electrolyte with bis(trifluoromethane) sulfonimide. Two different ...
Currently, the capacity of lithium-ion battery is mainly limited by its cathode material. Research e...
We demonstrate mechanically compliant and lithium dendrite growth-suppressing composite polymer elec...
Development of lithium-ion batteries with composite solid polymer electrolytes (CPSEs) has attracted...
Composite polymer electrolytes (CPEs) strike an effective balance between ionic conductivity and mec...
Composite polymer electrolytes (CPEs) for lithium-ion batteries provide an effectivebalance of ionic...
Composite electrolytes have potential to achieve high ionic conductivity, mechanicalflexibility, and...
A detailed experimental analysis of the factors affecting cyclic durability of all-solid-state lithi...
We study the effect of mechanical stresses arising in solid polymer electrolytes (SPEs) on the elect...
We analyze the effects of mechanical stresses arising in a solid polymer electrolyte (SPE) on the el...
Constraint-induced stresses develop during Li-ion battery cycling, because anode and cathode materia...
Pure, i.e., linear poly(ethylene oxide)-based solid polymer electrolyte (PEO-based SPE) as a common ...
Currently, the capacity of lithium-ion battery is mainly limited by its cathode material. Research e...
We demonstrate mechanically compliant and lithium dendrite growth-suppressing composite polymer elec...
Development of lithium-ion batteries with composite solid polymer electrolytes (CPSEs) has attracted...
Composite polymer electrolytes (CPEs) strike an effective balance between ionic conductivity and mec...
Composite polymer electrolytes (CPEs) for lithium-ion batteries provide an effectivebalance of ionic...
Composite electrolytes have potential to achieve high ionic conductivity, mechanicalflexibility, and...
A detailed experimental analysis of the factors affecting cyclic durability of all-solid-state lithi...
We study the effect of mechanical stresses arising in solid polymer electrolytes (SPEs) on the elect...
We analyze the effects of mechanical stresses arising in a solid polymer electrolyte (SPE) on the el...
Constraint-induced stresses develop during Li-ion battery cycling, because anode and cathode materia...
Pure, i.e., linear poly(ethylene oxide)-based solid polymer electrolyte (PEO-based SPE) as a common ...
Currently, the capacity of lithium-ion battery is mainly limited by its cathode material. Research e...
We demonstrate mechanically compliant and lithium dendrite growth-suppressing composite polymer elec...
Development of lithium-ion batteries with composite solid polymer electrolytes (CPSEs) has attracted...