All-solid-state lithium (Li) batteries provide a promising pathway toward high energy and power density. Dendrite penetration through the solid electrolyte causing battery short-circuit, however, persists to be one of the challenges impeding their widespread application. Here, considering a pre-existing surface crack in the electrolyte initially filled with an infinitely thin layer of Li, and assuming Li deposit to behave in accordance with rigid-viscoplasticity, we seek for the steady state Li-filled crack opening profile that could potentially form at a given constant current density. Treating the chemical potential of Li ions in the electrolyte and the electric potential to be uniform along the crack face, the model accounts for the coup...
We idealise dendrite growth in a ceramic electrolyte by climb of a thick edge dislocation. Growth of...
Lithium dendrite penetration has been widely evidenced in ceramic solid electrolytes (SEs), which ar...
Lithium (Li) metal has garnered significant attention as the preferred anode for high-energy lithium...
All-solid-state batteries with a Li anode and ceramic electrolyte have the potential to deliver a st...
Future lithium-ion batteries must use lithium metal anodes to fulfill the demands of high energy den...
The use of lithium (Li) or sodium (Na) metal anodes together with highly ion-conductive solid electr...
All-solid-state batteries (ASSB) are candidates for the next-generation of battery electric vehicles...
Li deposition is observed and measured on a solid electrolyte in the vicinity of a metallic current ...
The majority of the ceramic solid electrolytes (LLZO, LATP) demonstrate polycrystalline grain/grain-...
The work in this thesis is focused on the mechanistic investigations of all-solid-state battery degr...
Growth of lithium (Li) filaments within solid electrolytes, leading to mechanical degradation of the...
Mechanical constraints have been widely used experimentally to prevent the growth of dendrites withi...
Development of high energy density solid-state batteries with Li metal anodes has been limited by un...
The next generation of rechargeable batteries must have significantly improved gravimetric and volum...
Solid‐state lithium batteries will revolutionize the lithium‐ion battery and energy storage applicat...
We idealise dendrite growth in a ceramic electrolyte by climb of a thick edge dislocation. Growth of...
Lithium dendrite penetration has been widely evidenced in ceramic solid electrolytes (SEs), which ar...
Lithium (Li) metal has garnered significant attention as the preferred anode for high-energy lithium...
All-solid-state batteries with a Li anode and ceramic electrolyte have the potential to deliver a st...
Future lithium-ion batteries must use lithium metal anodes to fulfill the demands of high energy den...
The use of lithium (Li) or sodium (Na) metal anodes together with highly ion-conductive solid electr...
All-solid-state batteries (ASSB) are candidates for the next-generation of battery electric vehicles...
Li deposition is observed and measured on a solid electrolyte in the vicinity of a metallic current ...
The majority of the ceramic solid electrolytes (LLZO, LATP) demonstrate polycrystalline grain/grain-...
The work in this thesis is focused on the mechanistic investigations of all-solid-state battery degr...
Growth of lithium (Li) filaments within solid electrolytes, leading to mechanical degradation of the...
Mechanical constraints have been widely used experimentally to prevent the growth of dendrites withi...
Development of high energy density solid-state batteries with Li metal anodes has been limited by un...
The next generation of rechargeable batteries must have significantly improved gravimetric and volum...
Solid‐state lithium batteries will revolutionize the lithium‐ion battery and energy storage applicat...
We idealise dendrite growth in a ceramic electrolyte by climb of a thick edge dislocation. Growth of...
Lithium dendrite penetration has been widely evidenced in ceramic solid electrolytes (SEs), which ar...
Lithium (Li) metal has garnered significant attention as the preferred anode for high-energy lithium...