Successful prevention of lithium dendrite growth would enable the use of lithium metal as an anode material in next-generation rechargeable batteries. Mechanically stiff block copolymer electrolytes have been shown to prolong the life of lithium metal cells by partially suppressing lithium dendrite growth. However, impurity particles that are invariably present in the lithium metal nucleate electrodeposition defects that eventually lead to short circuits. In this study, we use X-ray tomography to study the morphology of electrodeposited lithium in symmetric cells containing a block copolymer electrolyte. An "electrochemical filtering" treatment was performed on these cells to reduce the concentration of impurity particles near the electrode...
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...
Lithium metal is a high-energy-density battery electrode material, but the largely irreversible grow...
Replacing the conventional graphite anode in rechargeable batteries with lithium metal results in a ...
Replacing the conventional graphite anode in rechargeable batteries with lithium metal results in a ...
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...
Solid block polymer electrolytes are promising candidates for the development of high energy density...
International audienceSolid block polymer electrolytes are promising candidates for the development ...
Solid block polymer electrolytes are promising candidates for the development of high energy density...
Smaller, lighter, more powerful batteries will help drive the next generation of mobile technologies...
Growing demand for rechargeable batteries with higher energy densities has motivated research focuse...
The dissertation reports on the use of block copolymer electrolytes in rechargeable lithium metal ba...
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 ...
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...
Lithium metal is a high-energy-density battery electrode material, but the largely irreversible grow...
Replacing the conventional graphite anode in rechargeable batteries with lithium metal results in a ...
Replacing the conventional graphite anode in rechargeable batteries with lithium metal results in a ...
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...
Solid block polymer electrolytes are promising candidates for the development of high energy density...
International audienceSolid block polymer electrolytes are promising candidates for the development ...
Solid block polymer electrolytes are promising candidates for the development of high energy density...
Smaller, lighter, more powerful batteries will help drive the next generation of mobile technologies...
Growing demand for rechargeable batteries with higher energy densities has motivated research focuse...
The dissertation reports on the use of block copolymer electrolytes in rechargeable lithium metal ba...
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 ...
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...
Lithium metal is a high-energy-density battery electrode material, but the largely irreversible grow...