International audiencePrevious work demonstrated that TiSnSb is a promising negative electrode material with high electrochemical performance due to the benefit of conversion type reaction vs Li. At low potentials, the volumetric change upon cycling entails electrolyte degradation which remains the main factor limiting the cycling life of TiSnSb based electrodes. To further improve the understanding of the formation of a solid electrolyte interphase (SEI) in the presence of alkyl carbonate based electrolytes and of its evolution upon cycling, powerful surface characterization techniques are combined for studying the electrode/electrolyte interface of TiSnSb composite electrodes. Electrochemical impedance spectroscopy is used for monitoring ...
Development of high-performing lithium-based batteries inevitably calls for a profound understanding...
Energy storage with secondary batteries is considered a core technology and a prerequisite for the e...
A key challenge for solid-state-batteries development is to design electrode-electrolyte interfaces ...
International audiencePrevious work demonstrated that TiSnSb is a promising negative electrode mater...
International audienceThe lithium-ion battery electrode material TiSnSb shows excellent electrochemi...
Compounds forming alloys with lithium, such as silicon or tin, are promising negative electrode mate...
An understanding of the formation and evolution of the solid electrolyte interface (SEI) layer is st...
Understanding the electrochemical and morphological properties of the Li-electrolyte interface plays...
We have investigated the formation of the solid electrolyte interphase (SEI) on lithium electrodes i...
International audienceConversion/alloying type materials are of great interests in term of electroch...
Lithium ion batteries are widely used in small portable electronics. Their application in larger dev...
The key factor in long-term use of batteries is the formation of an electrically insulating solid la...
The formation of a protecting nano-layer, so-called Solid Electrolyte Interphase (SEI), on the negat...
Development of high-performing lithium-based batteries inevitably calls for a profound understanding...
Energy storage with secondary batteries is considered a core technology and a prerequisite for the e...
A key challenge for solid-state-batteries development is to design electrode-electrolyte interfaces ...
International audiencePrevious work demonstrated that TiSnSb is a promising negative electrode mater...
International audienceThe lithium-ion battery electrode material TiSnSb shows excellent electrochemi...
Compounds forming alloys with lithium, such as silicon or tin, are promising negative electrode mate...
An understanding of the formation and evolution of the solid electrolyte interface (SEI) layer is st...
Understanding the electrochemical and morphological properties of the Li-electrolyte interface plays...
We have investigated the formation of the solid electrolyte interphase (SEI) on lithium electrodes i...
International audienceConversion/alloying type materials are of great interests in term of electroch...
Lithium ion batteries are widely used in small portable electronics. Their application in larger dev...
The key factor in long-term use of batteries is the formation of an electrically insulating solid la...
The formation of a protecting nano-layer, so-called Solid Electrolyte Interphase (SEI), on the negat...
Development of high-performing lithium-based batteries inevitably calls for a profound understanding...
Energy storage with secondary batteries is considered a core technology and a prerequisite for the e...
A key challenge for solid-state-batteries development is to design electrode-electrolyte interfaces ...