Dendritic growth plagues the development of rechargeable lithium metal anodes. Recently, it has been reported that (Science 2018, 359, 1513−1516) self-heating of the cell provides a mitigation strategy for suppressing dendrites. In order to study this phenomenon, we extend our recently developed nonlinear phase-field model to incorporate an energy balance equation allowing a full thermally coupled electrodeposition model using the open-source software package MOOSE. In this work, we consider the interplay between ionic transport and electrochemical reaction rate as a function of temperature and explore the possibility of using thermal shock induced dendrite suppression. We discover that, depending on the electrochemical reaction barrier and...
Dendrite formation on the electrode surface of high energy density batteries, such as lithium (Li) b...
Future lithium-ion batteries must use lithium metal anodes to fulfill the demands of high energy den...
Lithium (Li) metal has garnered significant attention as the preferred anode for high-energy lithium...
We report experiments and molecular dynamics calculations on the kinetics of electrodeposited lithiu...
We introduce a coarse-grained simulation model for the reductive deposition of lithium cations in se...
The dendritic structure is a disastrous problem of lithium metal batteries as well as other metal re...
Short-circuiting via dendrites compromises the reliability of Li-metal batteries. Dendrites ensue fr...
We have quantified lithium dendrite growth in an optically accessible symmetric Li-metal cell, charg...
Dendrite growth is a long-standing challenge that has limited the applications of rechargeable lithi...
The main obstacle to the development of the next-generation Li-based batteries is the formation of L...
Lithium batteries have been widely used, but the growth of lithium dendrites does lead to some hazar...
Short-circuiting via dendrites compromises the reliability of Li-metal batteries. Dendrites ensue fr...
The specific high energy and power capacities of rechargeable lithium metal (Li0) batteries are idea...
Dendrite formation on the electrode surface of high energy density batteries, such as lithium (Li) b...
Future lithium-ion batteries must use lithium metal anodes to fulfill the demands of high energy den...
Lithium (Li) metal has garnered significant attention as the preferred anode for high-energy lithium...
We report experiments and molecular dynamics calculations on the kinetics of electrodeposited lithiu...
We introduce a coarse-grained simulation model for the reductive deposition of lithium cations in se...
The dendritic structure is a disastrous problem of lithium metal batteries as well as other metal re...
Short-circuiting via dendrites compromises the reliability of Li-metal batteries. Dendrites ensue fr...
We have quantified lithium dendrite growth in an optically accessible symmetric Li-metal cell, charg...
Dendrite growth is a long-standing challenge that has limited the applications of rechargeable lithi...
The main obstacle to the development of the next-generation Li-based batteries is the formation of L...
Lithium batteries have been widely used, but the growth of lithium dendrites does lead to some hazar...
Short-circuiting via dendrites compromises the reliability of Li-metal batteries. Dendrites ensue fr...
The specific high energy and power capacities of rechargeable lithium metal (Li0) batteries are idea...
Dendrite formation on the electrode surface of high energy density batteries, such as lithium (Li) b...
Future lithium-ion batteries must use lithium metal anodes to fulfill the demands of high energy den...
Lithium (Li) metal has garnered significant attention as the preferred anode for high-energy lithium...