Severe structural deformation during (de)lithiation is the main factor limiting the stability of Si anodes in Li-ion batteries. Here, a multi-modal approach is used to visualize these deformations in their early-stage and link them to inhomogeneities in the dual-layer solid-electrolyte interphase
Extensive research for new energy storage materials has created a high demand for experimental techn...
Lithium-ion (Li-ion) batteries are critically important for portable electronics, electric vehicles,...
High-density silicon composite anodes show large volume changes upon charging/discharging triggering...
International audienceWhile intensive efforts have been devoted to studying the nature of the solid-...
<span lang="EN-US" style="font-family: "Calibri","sans-serif"; font-size: 10.5pt...
Silicon is a promising candidate to substitute or complement graphite as anode material in Li-ion ba...
The mechanical instability of the Solid Electrolyte Interphase (SEI) layer in lithium ion (Li-ion) b...
Silicon is a promising negative electrode material for high-energy-density Li-ion batteries (LiBs) b...
To develop high-capacity Li-ion batteries, volume expansion and material degradation of Si anodes ha...
Silicon (Si) is widely regarded as one of the most promising anode materials for Li ion battery due ...
Lithium ion batteries, a high energy density system, store energy by insertion of Li ions into solid...
Drastic volume change during lithiation and delithiation presents the biggest challenge to the reali...
Silicon is a promising candidate to substitute or complement graphite as anode material in Li-ion ba...
The solid electrolyte interphase (SEI) of the high capacity anode material Si is monitored over mult...
© 2018 Springer-Verlag GmbH Austria, part of Springer Nature High-capacity active electrodes, such a...
Extensive research for new energy storage materials has created a high demand for experimental techn...
Lithium-ion (Li-ion) batteries are critically important for portable electronics, electric vehicles,...
High-density silicon composite anodes show large volume changes upon charging/discharging triggering...
International audienceWhile intensive efforts have been devoted to studying the nature of the solid-...
<span lang="EN-US" style="font-family: "Calibri","sans-serif"; font-size: 10.5pt...
Silicon is a promising candidate to substitute or complement graphite as anode material in Li-ion ba...
The mechanical instability of the Solid Electrolyte Interphase (SEI) layer in lithium ion (Li-ion) b...
Silicon is a promising negative electrode material for high-energy-density Li-ion batteries (LiBs) b...
To develop high-capacity Li-ion batteries, volume expansion and material degradation of Si anodes ha...
Silicon (Si) is widely regarded as one of the most promising anode materials for Li ion battery due ...
Lithium ion batteries, a high energy density system, store energy by insertion of Li ions into solid...
Drastic volume change during lithiation and delithiation presents the biggest challenge to the reali...
Silicon is a promising candidate to substitute or complement graphite as anode material in Li-ion ba...
The solid electrolyte interphase (SEI) of the high capacity anode material Si is monitored over mult...
© 2018 Springer-Verlag GmbH Austria, part of Springer Nature High-capacity active electrodes, such a...
Extensive research for new energy storage materials has created a high demand for experimental techn...
Lithium-ion (Li-ion) batteries are critically important for portable electronics, electric vehicles,...
High-density silicon composite anodes show large volume changes upon charging/discharging triggering...