We present an operando neutron reflectometry study on the electrochemical incorporation of lithium into crystalline silicon for battery applications. Neutron reflectivity is measured from the ⟨100⟩ surface of a silicon single crystal which is used as a negative electrode in an electrochemical cell. The strong scattering contrast between Si and Li due to the negative scattering length of Li leads to a precise depth profile of Li within the Si anode as a function of time. The operando cell can be used to study the uptake and the release of Li over several cycles. Lithiation starts with the formation of a lithium enrichment zone during the first charge step. The uptake of Li can be divided into a highly lithiated zone at the surface (skin regi...
Because of its high specific capacity, silicon is regarded as the most promising candidate to be inc...
The parameters characterizing lithiation processes in silicon anodes of lithium ion batteries (LIBs)...
International audienceThe (de)lithiation process and resulting atomic and nanoscale morphological ch...
The lithiation of crystalline silicon was studied over several cycles using operando neutron reflect...
Neutron reflectometry is used to study in situ the intercalation of lithium into amorphous silicon e...
In situ neutron reflectometry and ex situ secondary ion mass spectrometry in combination with electr...
Silicon is a promising anode material for lithium ion batteries due to its ten times higher specific...
Operando neutron reflectometry measurements were carried out to study the insertion of lithium into ...
In the ongoing search for new negative electrode materials for lithium-ion batteries, amorphous sili...
Li ion transport through thin (14–22 nm) amorphous silicon layers adjacent to lithium metal oxide la...
Operando phase contrast radiography combined with impedance spectroscopy and electron microscopy is ...
Because of its high specific capacity, silicon is regarded as the most promising candidate to be inc...
The parameters characterizing lithiation processes in silicon anodes of lithium ion batteries (LIBs)...
International audienceThe (de)lithiation process and resulting atomic and nanoscale morphological ch...
The lithiation of crystalline silicon was studied over several cycles using operando neutron reflect...
Neutron reflectometry is used to study in situ the intercalation of lithium into amorphous silicon e...
In situ neutron reflectometry and ex situ secondary ion mass spectrometry in combination with electr...
Silicon is a promising anode material for lithium ion batteries due to its ten times higher specific...
Operando neutron reflectometry measurements were carried out to study the insertion of lithium into ...
In the ongoing search for new negative electrode materials for lithium-ion batteries, amorphous sili...
Li ion transport through thin (14–22 nm) amorphous silicon layers adjacent to lithium metal oxide la...
Operando phase contrast radiography combined with impedance spectroscopy and electron microscopy is ...
Because of its high specific capacity, silicon is regarded as the most promising candidate to be inc...
The parameters characterizing lithiation processes in silicon anodes of lithium ion batteries (LIBs)...
International audienceThe (de)lithiation process and resulting atomic and nanoscale morphological ch...