To utilize high-capacity Si anodes in next-generation Li-ion batteries, the physical and chemical transformations during the Li–Si reaction must be better understood. Here, in situ transmission electron microscopy is used to observe the lithiation/delithiation of amorphous Si nanospheres; amorphous Si is an important anode material that has been less studied than crystalline Si. Unexpectedly, the experiments reveal that the first lithiation occurs via a two-phase mechanism, which is contrary to previous understanding and has important consequences for mechanical stress evolution during lithiation. On the basis of kinetics measurements, this behavior is suggested to be due to the rate-limiting effect of Si–Si bond breaking. In addition, the ...
In the search for high-energy density materials for Li-ion batteries, silicon has emerged as a promi...
Determining structural transformations in amorphous solids is challenging due to the paucity of stru...
We use a unique transmission electron microscope (TEM) technique to show that Si nanowires (NWs) wit...
In situ electrochemical lithiation and delithiation processes inside a nanobattery consisting of an ...
In situ electrochemical lithiation and delithiation processes inside a nanobattery consisting of an ...
Despite many existing studies on silicon (Si) anodes for lithium ion batteries (LIBs), many essentia...
Silicon (Si) is widely regarded as one of the most promising anode materials for Li ion battery (LIB...
Silicon (Si) is widely regarded as one of the most promising anode materials for Li ion battery (LIB...
International audienceThe atomistic mechanisms during lithiation and delithiation of amorphous Si na...
Silicon (Si) is widely regarded as one of the most promising anode materials for Li ion battery due ...
In lithium-ion batteries, the electrochemical reaction between Li and Si causes structural changes i...
Lithiation of individual silicon nanoparticles was studied in real time with <i>in situ</i> transmis...
This work aims to review and understand the behavior of the electrochemical lithiation onset of amor...
Following an explosion of studies of silicon as a negative electrode for Li-ion batteries, the anoma...
A better understanding of lithium-silicon alloying mechanisms and associated mechanical behavior is ...
In the search for high-energy density materials for Li-ion batteries, silicon has emerged as a promi...
Determining structural transformations in amorphous solids is challenging due to the paucity of stru...
We use a unique transmission electron microscope (TEM) technique to show that Si nanowires (NWs) wit...
In situ electrochemical lithiation and delithiation processes inside a nanobattery consisting of an ...
In situ electrochemical lithiation and delithiation processes inside a nanobattery consisting of an ...
Despite many existing studies on silicon (Si) anodes for lithium ion batteries (LIBs), many essentia...
Silicon (Si) is widely regarded as one of the most promising anode materials for Li ion battery (LIB...
Silicon (Si) is widely regarded as one of the most promising anode materials for Li ion battery (LIB...
International audienceThe atomistic mechanisms during lithiation and delithiation of amorphous Si na...
Silicon (Si) is widely regarded as one of the most promising anode materials for Li ion battery due ...
In lithium-ion batteries, the electrochemical reaction between Li and Si causes structural changes i...
Lithiation of individual silicon nanoparticles was studied in real time with <i>in situ</i> transmis...
This work aims to review and understand the behavior of the electrochemical lithiation onset of amor...
Following an explosion of studies of silicon as a negative electrode for Li-ion batteries, the anoma...
A better understanding of lithium-silicon alloying mechanisms and associated mechanical behavior is ...
In the search for high-energy density materials for Li-ion batteries, silicon has emerged as a promi...
Determining structural transformations in amorphous solids is challenging due to the paucity of stru...
We use a unique transmission electron microscope (TEM) technique to show that Si nanowires (NWs) wit...