Replacing the conventional graphite anode in rechargeable batteries with lithium metal results in a significant increase in energy density. However, growth of electronically conductive structures, like dendrites, from lithium anodes causes premature battery failure by short circuit. Mechanically rigid electrolytes are thought to promote smooth lithium deposition by increasing the energy required for lithium reduction at regions of high local strain, like a dendrite tip. The study reported herein used X-ray microtomography, Focused Ion Beam (FIB) milling, and Scanning Electron Microscopy (SEM) imaging to investigate the electrochemical stripping and deposition behavior of lithium in symmetric lithium - polymer cells using a rigid polystyrene...
The propensity of lithium to form nonplanar, mossy, or dendritic electrodeposits at current densitie...
The propensity of lithium to form nonplanar, mossy, or dendritic electrodeposits at current densitie...
This thesis is concerned with lithium deposition in solid polymer electrolyte batteries. Passivating...
Replacing the conventional graphite anode in rechargeable batteries with lithium metal results in a ...
Successful prevention of lithium dendrite growth would enable the use of lithium metal as an anode m...
Understanding and controlling the electrochemical deposition of lithium is imperative for the safe u...
The next generation of rechargeable batteries must have significantly improved gravimetric and volum...
The next generation of rechargeable batteries must have significantly improved gravimetric and volum...
Growing demand for rechargeable batteries with higher energy densities has motivated research focuse...
It is crucial to suppress lithium dendrite formation in lithium metal batteries. Formation of a good...
There is a growing demand for higher energy density lithium batteries. One approach for addressing t...
There is a growing demand for higher energy density lithium batteries. One approach for addressing t...
Failure caused by dendrite growth in high-energy-density, rechargeable batteries with lithium metal ...
Failure caused by dendrite growth in high-energy-density, rechargeable batteries with lithium metal ...
Smaller, lighter, more powerful batteries will help drive the next generation of mobile technologies...
The propensity of lithium to form nonplanar, mossy, or dendritic electrodeposits at current densitie...
The propensity of lithium to form nonplanar, mossy, or dendritic electrodeposits at current densitie...
This thesis is concerned with lithium deposition in solid polymer electrolyte batteries. Passivating...
Replacing the conventional graphite anode in rechargeable batteries with lithium metal results in a ...
Successful prevention of lithium dendrite growth would enable the use of lithium metal as an anode m...
Understanding and controlling the electrochemical deposition of lithium is imperative for the safe u...
The next generation of rechargeable batteries must have significantly improved gravimetric and volum...
The next generation of rechargeable batteries must have significantly improved gravimetric and volum...
Growing demand for rechargeable batteries with higher energy densities has motivated research focuse...
It is crucial to suppress lithium dendrite formation in lithium metal batteries. Formation of a good...
There is a growing demand for higher energy density lithium batteries. One approach for addressing t...
There is a growing demand for higher energy density lithium batteries. One approach for addressing t...
Failure caused by dendrite growth in high-energy-density, rechargeable batteries with lithium metal ...
Failure caused by dendrite growth in high-energy-density, rechargeable batteries with lithium metal ...
Smaller, lighter, more powerful batteries will help drive the next generation of mobile technologies...
The propensity of lithium to form nonplanar, mossy, or dendritic electrodeposits at current densitie...
The propensity of lithium to form nonplanar, mossy, or dendritic electrodeposits at current densitie...
This thesis is concerned with lithium deposition in solid polymer electrolyte batteries. Passivating...