The fast Li+ transportation of “polymer-in-ceramic” electrolytes is highly dependent on the long-range Li+ migration pathways, which are determined by the structure and chemistry of the electrolytes. Besides, Li dendrite growth may be promoted in the soft polymer region due to the inhomogeneous electric field caused by the commonly low Li+ transference number of the polymer. Herein, a single-ion-conducting polymer electrolyte is infiltrated into intertwined Li1.3Al0.3Ti1.7(PO4)3 (LATP) nanofibers to construct free-standing electrolyte membranes. The composite electrolyte possesses a large electrochemical window exceeding 5 V, a high ionic conductivity of 0.31 mS cm–1 at ambient temperature, and an extraordinary Li+ transference number of 0....
Due to the degradation of lithium-metal anode, lithium dendritic growth and other challenging proble...
Aqueous lithium–air batteries have very high theoretical energy densities, which potentially makes t...
Abstract The replacement of liquid organic electrolytes with solid‐state electrolytes (SSEs) is a fe...
Polymer electrolytes are attractive candidates to boost the application of rechargeable lithium meta...
Solid-state electrolytes provide substantial improvements to safety and electrochemical stability in...
© 2019 Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim The low Coulombic efficiency and serious safety is...
International audienceTo boost the energy density of lithium-based accumulators, two levers are comm...
International audienceTo boost the energy density of lithium-based accumulators, two levers are comm...
Hybrid polymer-ceramic electrolytes with high ceramic loading are currently investigated as a promis...
International audienceTo boost the energy density of lithium-based accumulators, two levers are comm...
It has long been recognized that secondary batteries containing lithium metal anodes have some of th...
Hybrid polymer-ceramic electrolytes with high ceramic loading are currently investigated as a promis...
The use of lithium metal as the anode for Lithium Metal Batteries (LMB) requires having solid or qua...
The use of lithium metal as the anode for Lithium Metal Batteries (LMB) requires having solid or qua...
Aqueous lithium–air batteries have very high theoretical energy densities, which potentially makes t...
Due to the degradation of lithium-metal anode, lithium dendritic growth and other challenging proble...
Aqueous lithium–air batteries have very high theoretical energy densities, which potentially makes t...
Abstract The replacement of liquid organic electrolytes with solid‐state electrolytes (SSEs) is a fe...
Polymer electrolytes are attractive candidates to boost the application of rechargeable lithium meta...
Solid-state electrolytes provide substantial improvements to safety and electrochemical stability in...
© 2019 Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim The low Coulombic efficiency and serious safety is...
International audienceTo boost the energy density of lithium-based accumulators, two levers are comm...
International audienceTo boost the energy density of lithium-based accumulators, two levers are comm...
Hybrid polymer-ceramic electrolytes with high ceramic loading are currently investigated as a promis...
International audienceTo boost the energy density of lithium-based accumulators, two levers are comm...
It has long been recognized that secondary batteries containing lithium metal anodes have some of th...
Hybrid polymer-ceramic electrolytes with high ceramic loading are currently investigated as a promis...
The use of lithium metal as the anode for Lithium Metal Batteries (LMB) requires having solid or qua...
The use of lithium metal as the anode for Lithium Metal Batteries (LMB) requires having solid or qua...
Aqueous lithium–air batteries have very high theoretical energy densities, which potentially makes t...
Due to the degradation of lithium-metal anode, lithium dendritic growth and other challenging proble...
Aqueous lithium–air batteries have very high theoretical energy densities, which potentially makes t...
Abstract The replacement of liquid organic electrolytes with solid‐state electrolytes (SSEs) is a fe...