The specific high energy and power capacities of rechargeable lithium metal (Li0) batteries are ideally suited to portable devices and are valuable as storage units for intermittent renewable energy sources. Lithium, the lightest and most electropositive metal, would be the optimal anode material for rechargeable batteries if it were not for the fact that such devices fail unexpectedly by short-circuiting via the dendrites that grow across electrodes upon recharging. This phenomenon poses a major safety issue because it triggers a series of adverse events that start with overheating, potentially followed by the thermal decomposition and ultimately the ignition of the organic solvents used in such devices. In this thesis, we developed exp...
The use of a lithium-metal anode in both current and future battery technologies, including lithium-...
The main focus of this research is on understanding the dendrite formation on the lithium surface ...
A physics-based, multiscale framework is presented to describe the degradation in rechargeable lithi...
We report experiments and molecular dynamics calculations on the kinetics of electrodeposited lithiu...
Short-circuiting via dendrites compromises the reliability of Li-metal batteries. Dendrites ensue fr...
We introduce a coarse-grained simulation model for the reductive deposition of lithium cations in se...
We quantify the effects of the duration of the charge–discharge cycling period on the irreversible l...
The next generation of rechargeable batteries must have significantly improved gravimetric and volum...
The densifying kinetics of lithium dendrites is characterized with effective activation energy of E_...
Lithium is an attractive battery anode material due to its potential for high- energy- d. storage ap...
The main obstacle to the development of the next-generation Li-based batteries is the formation of L...
Short-circuiting via dendrites compromises the reliability of Li-metal batteries. Dendrites ensue fr...
Lithium (Li) metal has garnered significant attention as the preferred anode for high-energy lithium...
Lithium ion batteries hold the potential to play a key role in meeting our future and increasing ene...
Next-generation high-energy batteries will require a rechargeable lithium metal anode, but lithium d...
The use of a lithium-metal anode in both current and future battery technologies, including lithium-...
The main focus of this research is on understanding the dendrite formation on the lithium surface ...
A physics-based, multiscale framework is presented to describe the degradation in rechargeable lithi...
We report experiments and molecular dynamics calculations on the kinetics of electrodeposited lithiu...
Short-circuiting via dendrites compromises the reliability of Li-metal batteries. Dendrites ensue fr...
We introduce a coarse-grained simulation model for the reductive deposition of lithium cations in se...
We quantify the effects of the duration of the charge–discharge cycling period on the irreversible l...
The next generation of rechargeable batteries must have significantly improved gravimetric and volum...
The densifying kinetics of lithium dendrites is characterized with effective activation energy of E_...
Lithium is an attractive battery anode material due to its potential for high- energy- d. storage ap...
The main obstacle to the development of the next-generation Li-based batteries is the formation of L...
Short-circuiting via dendrites compromises the reliability of Li-metal batteries. Dendrites ensue fr...
Lithium (Li) metal has garnered significant attention as the preferred anode for high-energy lithium...
Lithium ion batteries hold the potential to play a key role in meeting our future and increasing ene...
Next-generation high-energy batteries will require a rechargeable lithium metal anode, but lithium d...
The use of a lithium-metal anode in both current and future battery technologies, including lithium-...
The main focus of this research is on understanding the dendrite formation on the lithium surface ...
A physics-based, multiscale framework is presented to describe the degradation in rechargeable lithi...