Silicon is a promising material for lithium-ion batteries. However, it expands by 300% on lithiation, leading to fracture. Nanostructuring of silicon is expected to be a promising method to improve the mechanical strength of the silicon electrodes. In the present work, a unique battery test cell was designed and fabricated to study the in situ stress evolution in the silicon nanowire (SiNW) electrode during electrochemical lithiation using synchrotron X-ray microdiffraction. The stress in the SiNWs at pristine state and during lithiation was evaluated using energy scans. The average stress in the pristine nanowires was found to be ∼40 MPa tensile, which changed to ∼325 MPa compressive on lithiation. Further, the deviatoric stress state in t...
International audienceThe electrochemical and structural responses of silicon nanowires deposited by...
Following an explosion of studies of silicon as a negative electrode for Li-ion batteries, the anoma...
We report <i>in situ</i> tensile strength measurement of fully lithiated Si (Li–Si alloy) nanowires ...
Silicon is a promising material for lithium-ion batteries. However, it expands by 300% on lithiation...
Silicon is considered as a promising anode material for the next-generation lithium-ion battery (LIB...
Silicon is considered as a promising anode material for the next-generation lithium-ion battery (LIB...
<p>Silicon is considered as a promising anode material for the next-generation lithium-ion battery (...
Silicon is a promising anode material for Li-ion batteries due to its high theoretical specific capa...
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...
Nanostructured silicon anodes, which possess extremely high energy density and accommodate large str...
Silicon is considered to be a promising anode material for lithium-ion batteries with very high ener...
With its high specific capacity, silicon is a promising anode material for high-energy lithium-ion b...
The rates of charging and discharging in lithium-ion batteries (LIBs) are critically controlled by t...
International audienceThe electrochemical and structural responses of silicon nanowires deposited by...
Following an explosion of studies of silicon as a negative electrode for Li-ion batteries, the anoma...
We report <i>in situ</i> tensile strength measurement of fully lithiated Si (Li–Si alloy) nanowires ...
Silicon is a promising material for lithium-ion batteries. However, it expands by 300% on lithiation...
Silicon is considered as a promising anode material for the next-generation lithium-ion battery (LIB...
Silicon is considered as a promising anode material for the next-generation lithium-ion battery (LIB...
<p>Silicon is considered as a promising anode material for the next-generation lithium-ion battery (...
Silicon is a promising anode material for Li-ion batteries due to its high theoretical specific capa...
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...
Nanostructured silicon anodes, which possess extremely high energy density and accommodate large str...
Silicon is considered to be a promising anode material for lithium-ion batteries with very high ener...
With its high specific capacity, silicon is a promising anode material for high-energy lithium-ion b...
The rates of charging and discharging in lithium-ion batteries (LIBs) are critically controlled by t...
International audienceThe electrochemical and structural responses of silicon nanowires deposited by...
Following an explosion of studies of silicon as a negative electrode for Li-ion batteries, the anoma...
We report <i>in situ</i> tensile strength measurement of fully lithiated Si (Li–Si alloy) nanowires ...