We idealise dendrite growth in a ceramic electrolyte by climb of a thick edge dislocation. Growth of the dendrite occurs at constant chemical potential of Li+ at the dendrite tip: the free-energy to fracture and wedge open the electrolyte is provided by the flux of Li+ from the electrolyte into the dendrite tip. This free-energy is dependent on the Li+ overpotential at the dendrite tip and is thereby related to the imposed charging current density. The predicted critical current density agrees with measurements for Li/LLZO/Li symmetric cells: the critical current density decreases with increasing initial length of the dendrite and with increasing electrode/electrolyte interfacial ionic resistance. The simulations also reveal that a void on ...
Failure caused by dendrite growth in high-energy-density, rechargeable batteries with lithium metal ...
Here, we report a new charge protocol for dendrite-free Li-metal battery based on the understanding ...
We offer an explanation for how dendrite growth can be inhibited when Li metal pouch cells are subje...
We idealise dendrite growth in a ceramic electrolyte by climb of a thick edge dislocation. Growth of...
© 2020 Lithium-ion batteries with single ion-conductor ceramic electrolytes short-circuit when subje...
The majority of the ceramic solid electrolytes (LLZO, LATP) demonstrate polycrystalline grain/grain-...
Solid-state lithium batteries cannot achieve reasonable power densities because of dendrites, whose ...
Future lithium-ion batteries must use lithium metal anodes to fulfill the demands of high energy den...
A critical current density on stripping is identified that results in dendrite formation on plating ...
All-solid-state lithium (Li) batteries provide a promising pathway toward high energy and power dens...
Contouring or structuring of the lithium/ceramic electrolyte interface and therefore increasing its ...
All-solid-state batteries with a Li anode and ceramic electrolyte have the potential to deliver a st...
Lithium batteries have been widely used, but the growth of lithium dendrites does lead to some hazar...
The main obstacle to the development of the next-generation Li-based batteries is the formation of L...
Mechanical constraints have been widely used experimentally to prevent the growth of dendrites withi...
Failure caused by dendrite growth in high-energy-density, rechargeable batteries with lithium metal ...
Here, we report a new charge protocol for dendrite-free Li-metal battery based on the understanding ...
We offer an explanation for how dendrite growth can be inhibited when Li metal pouch cells are subje...
We idealise dendrite growth in a ceramic electrolyte by climb of a thick edge dislocation. Growth of...
© 2020 Lithium-ion batteries with single ion-conductor ceramic electrolytes short-circuit when subje...
The majority of the ceramic solid electrolytes (LLZO, LATP) demonstrate polycrystalline grain/grain-...
Solid-state lithium batteries cannot achieve reasonable power densities because of dendrites, whose ...
Future lithium-ion batteries must use lithium metal anodes to fulfill the demands of high energy den...
A critical current density on stripping is identified that results in dendrite formation on plating ...
All-solid-state lithium (Li) batteries provide a promising pathway toward high energy and power dens...
Contouring or structuring of the lithium/ceramic electrolyte interface and therefore increasing its ...
All-solid-state batteries with a Li anode and ceramic electrolyte have the potential to deliver a st...
Lithium batteries have been widely used, but the growth of lithium dendrites does lead to some hazar...
The main obstacle to the development of the next-generation Li-based batteries is the formation of L...
Mechanical constraints have been widely used experimentally to prevent the growth of dendrites withi...
Failure caused by dendrite growth in high-energy-density, rechargeable batteries with lithium metal ...
Here, we report a new charge protocol for dendrite-free Li-metal battery based on the understanding ...
We offer an explanation for how dendrite growth can be inhibited when Li metal pouch cells are subje...