In this work, we report methods to quantify and minimize the interfacial resistance for Li ion transport, Rinterface, between a model polymer electrolyte, poly(ethylene oxide) + LiCF3SO3 (PE), and a model Li+-conducting ceramic electrolyte, LICGC from Ohara Corporation. By constructing a PE–ceramic–PE trilayer cell, we found Rinterface to be very large, 1.2 kΩ·cm2 at 30 °C, accounting for 66% of the total trilayer cell resistance. When dimethyl carbonate, a loose-binding solvent of Li+, was introduced into the trilayer, Rinterface decreased to essentially zero. As a result, a composite electrolyte with carbonate plasticizers wherein 40 vol % ceramic particles were dispersed in the polymer showed extraordinary room-temperature conductivity ...
International audienceSolid-state batteries are seen as a possible revolutionary technology, with in...
Among all solid electrolytes, composite solid polymer electrolytes, comprised of polymer matrix and ...
A better molecular-level understanding of Li+ diffusion through ceramic/polymer interfaces is key to...
Large, dominating resistances to lithium transport at interfaces between polymeric and ceramic elect...
The electrochemical properties of a composite solid polymer electrolyte, consisting of poly(ethylene...
The ionic transport in solid-state composite electrolytes based on poly(trimethylene carbonate) (PTM...
The ionic transport in solid-state composite electrolytes based on poly(trimethylene carbonate) (PTM...
Composite electrolytes of the lithium-ion-conducting ceramic Li1.3Al0.3Ti1.7(PO4)3 and polyetheruret...
Hybrid solid-state batteries using a bilayer of ceramic and solid polymer electrolytes may offer adv...
Solid-state electrolytes such as lithium ion conducting ceramic or solid polymers have been studied ...
International audienceSolid-state batteries are seen as a possible revolutionary technology, with in...
International audienceSolid-state batteries are seen as a possible revolutionary technology, with in...
International audienceSolid-state batteries are seen as a possible revolutionary technology, with in...
Hybrid solid-state batteries using a bilayer of ceramic and solid polymer electrolytes may offer adv...
International audienceSolid-state batteries are seen as a possible revolutionary technology, with in...
International audienceSolid-state batteries are seen as a possible revolutionary technology, with in...
Among all solid electrolytes, composite solid polymer electrolytes, comprised of polymer matrix and ...
A better molecular-level understanding of Li+ diffusion through ceramic/polymer interfaces is key to...
Large, dominating resistances to lithium transport at interfaces between polymeric and ceramic elect...
The electrochemical properties of a composite solid polymer electrolyte, consisting of poly(ethylene...
The ionic transport in solid-state composite electrolytes based on poly(trimethylene carbonate) (PTM...
The ionic transport in solid-state composite electrolytes based on poly(trimethylene carbonate) (PTM...
Composite electrolytes of the lithium-ion-conducting ceramic Li1.3Al0.3Ti1.7(PO4)3 and polyetheruret...
Hybrid solid-state batteries using a bilayer of ceramic and solid polymer electrolytes may offer adv...
Solid-state electrolytes such as lithium ion conducting ceramic or solid polymers have been studied ...
International audienceSolid-state batteries are seen as a possible revolutionary technology, with in...
International audienceSolid-state batteries are seen as a possible revolutionary technology, with in...
International audienceSolid-state batteries are seen as a possible revolutionary technology, with in...
Hybrid solid-state batteries using a bilayer of ceramic and solid polymer electrolytes may offer adv...
International audienceSolid-state batteries are seen as a possible revolutionary technology, with in...
International audienceSolid-state batteries are seen as a possible revolutionary technology, with in...
Among all solid electrolytes, composite solid polymer electrolytes, comprised of polymer matrix and ...
A better molecular-level understanding of Li+ diffusion through ceramic/polymer interfaces is key to...