We demonstrate that changes in the unit cell structure of lithium battery cathode materials during electrochemical cycling in liquid electrolyte can be determined for particles of just a few hundred nanometers in size using in situ transmission electron microscopy (TEM). The atomic coordinates, site occupancies (including lithium occupancy), and cell parameters of the materials can all be reliably quantified. This was achieved using electron diffraction tomography (EDT) in a sealed electrochemical cell with conventional liquid electrolyte (LP30) and LiFePO4 crystals, which have a well-documented charged structure to use as reference. In situ EDT in a liquid environment cell provides a viable alternative to in situ X-ray and neutron diffract...
The world-wide effort to produce and use cleaner energy also necessitates more advanced energy stora...
Electrodeposited metallic lithium is an ideal negative battery electrode, but nonuniform microstruct...
Battery performance depends on many factors amongst which the selection of the appropriate electrode...
We demonstrate that changes in the unit cell structure of lithium battery cathode materials during e...
International audienceWe demonstrate that changes in the unit cell structure of lithium battery cath...
In situ transmission electron microscopy (TEM) has emerged as a promising characterization tool for ...
International audienceLithium-ion (LIB) batteries, thanks to their high energy density and capacity,...
The ability to directly resolve the dynamic processes that occur at the electrode-electrolyte interf...
Direct observation of the nanostructural evolution of electrode materials is critical to understandi...
The foreseeable worldwide energy and environmental challenges demand renewable alternative sources, ...
In the modern age of ubiquitous mobile technology, demand for ever increasing battery capacity and s...
Development of novel electrolytes with increased electrochemical stability is critical for the next ...
Lithium dendrite formation is a major safety concern existing in Li-ion and Li-metal batteries. In s...
The world-wide effort to produce and use cleaner energy also necessitates more advanced energy stora...
Electrodeposited metallic lithium is an ideal negative battery electrode, but nonuniform microstruct...
Battery performance depends on many factors amongst which the selection of the appropriate electrode...
We demonstrate that changes in the unit cell structure of lithium battery cathode materials during e...
International audienceWe demonstrate that changes in the unit cell structure of lithium battery cath...
In situ transmission electron microscopy (TEM) has emerged as a promising characterization tool for ...
International audienceLithium-ion (LIB) batteries, thanks to their high energy density and capacity,...
The ability to directly resolve the dynamic processes that occur at the electrode-electrolyte interf...
Direct observation of the nanostructural evolution of electrode materials is critical to understandi...
The foreseeable worldwide energy and environmental challenges demand renewable alternative sources, ...
In the modern age of ubiquitous mobile technology, demand for ever increasing battery capacity and s...
Development of novel electrolytes with increased electrochemical stability is critical for the next ...
Lithium dendrite formation is a major safety concern existing in Li-ion and Li-metal batteries. In s...
The world-wide effort to produce and use cleaner energy also necessitates more advanced energy stora...
Electrodeposited metallic lithium is an ideal negative battery electrode, but nonuniform microstruct...
Battery performance depends on many factors amongst which the selection of the appropriate electrode...