We use a unique transmission electron microscope (TEM) technique to show that Si nanowires (NWs) with diameters in the range of a few hundred nanometers can be fully lithiated and delithiated without fracture, in spite of the large volume changes that occur in this process. By analyzing the stresses associated with lithiation and delithiation we conclude that the process does not occur by the growth of discrete crystalline phases; rather it occurs by amorphization of the Si NWs followed by diffusion of Li into the structure. By accounting for the large deformation associated with this process and by including the effects of pressure gradients on the diffusion of Li, we show that Si NWs with diameters less than about 300 nm could not fractur...
Silicon is considered to be a promising anode material for lithium-ion batteries with very high ener...
Extensive research for new energy storage materials has created a high demand for experimental techn...
The rates of charging and discharging in lithium-ion batteries (LIBs) are critically controlled by t...
Lithiation of individual silicon nanoparticles was studied in real time with <i>in situ</i> transmis...
Lithiation of individual silicon nanoparticles was studied in real time with <i>in situ</i> transmis...
With its high specific capacity, silicon is a promising anode material for high-energy lithium-ion b...
Nanostructured silicon anodes, which possess extremely high energy density and accommodate large str...
We report <i>in situ</i> tensile strength measurement of fully lithiated Si (Li–Si alloy) nanowires ...
We report <i>in situ</i> tensile strength measurement of fully lithiated Si (Li–Si alloy) nanowires ...
We report <i>in situ</i> tensile strength measurement of fully lithiated Si (Li–Si alloy) nanowires ...
Nanostructured silicon anodes, which possess extremely high energy density and accommodate large str...
Nanostructured silicon anodes, which possess extremely high energy density and accommodate large str...
Nanostructured silicon anodes, which possess extremely high energy density and accommodate large str...
Silicon nanostructures have been employed as the anodes of lithium-ion batteries to mitigate mechani...
Following an explosion of studies of silicon as a negative electrode for Li-ion batteries, the anoma...
Silicon is considered to be a promising anode material for lithium-ion batteries with very high ener...
Extensive research for new energy storage materials has created a high demand for experimental techn...
The rates of charging and discharging in lithium-ion batteries (LIBs) are critically controlled by t...
Lithiation of individual silicon nanoparticles was studied in real time with <i>in situ</i> transmis...
Lithiation of individual silicon nanoparticles was studied in real time with <i>in situ</i> transmis...
With its high specific capacity, silicon is a promising anode material for high-energy lithium-ion b...
Nanostructured silicon anodes, which possess extremely high energy density and accommodate large str...
We report <i>in situ</i> tensile strength measurement of fully lithiated Si (Li–Si alloy) nanowires ...
We report <i>in situ</i> tensile strength measurement of fully lithiated Si (Li–Si alloy) nanowires ...
We report <i>in situ</i> tensile strength measurement of fully lithiated Si (Li–Si alloy) nanowires ...
Nanostructured silicon anodes, which possess extremely high energy density and accommodate large str...
Nanostructured silicon anodes, which possess extremely high energy density and accommodate large str...
Nanostructured silicon anodes, which possess extremely high energy density and accommodate large str...
Silicon nanostructures have been employed as the anodes of lithium-ion batteries to mitigate mechani...
Following an explosion of studies of silicon as a negative electrode for Li-ion batteries, the anoma...
Silicon is considered to be a promising anode material for lithium-ion batteries with very high ener...
Extensive research for new energy storage materials has created a high demand for experimental techn...
The rates of charging and discharging in lithium-ion batteries (LIBs) are critically controlled by t...