The Li+ insertion and extraction characteristics at n-type and p-type Si(100) electrodes with different carrier density and doping type are investigated by cyclic voltammetry and constant current measurements. The insertion and extraction potentials are demonstrated to vary with cycling and the occurrence of an activation effect is shown in n-type electrodes where the charge capacity and voltammetric currents are found to be much higher than p-type electrodes. A rate-dependent redox process influenced by the surface region electronic density, which influences the magnitude of cyclic voltammetry current is found at Si(100) surface regions during Li insertion and extraction. At p-type Si(100) surface regions, a thin, uniform film forms at low...
The work presented here focuses on electrodes made of silicon, a promising material to replace graph...
Silicon is a promising negative electrode material for high‐energy‐density Li‐ion batteries (LiBs) b...
Abstract(#br)Si-based materials with high theoretical storage capacity and low working potential are...
The Li+ insertion and extraction characteristics at n-type and p-type Si(100) electrodes with differ...
By using Si(100) with different dopant type (n++-type (As) or p-type (B)), it is shown how metal-ass...
Amorphous hydrogenated silicon (a-Si:H) is known to be a perspective material for negative electrode...
Operando neutron reflectometry measurements were carried out to study the insertion of lithium into ...
Li-ion batteries are the energy storage of choice for portable electronics and are of extreme intere...
This work reports the Li+ uptake/extraction mechanism in silicon monoxide (SiO) as the negative elec...
Silicon (Si) is an attractive anode material for Li-ion batteries (LIBs) due to its high theoretical...
Silicon is a serious candidate to replace graphite in electrodes because it offers a specific capaci...
Silicon is a promising and attractive anode material to replace graphite for high capacity lithium i...
The knowledge of Li diffusion in lithium silicide (LixSi) is nowadays of importance for the Li-ion b...
Les travaux de thèse présentés dans ce manuscrit portent sur l’étude d’électrodes de silicium, matér...
Lithium-ion batteries enable a modern, mobile society and are a widely used source of portable energ...
The work presented here focuses on electrodes made of silicon, a promising material to replace graph...
Silicon is a promising negative electrode material for high‐energy‐density Li‐ion batteries (LiBs) b...
Abstract(#br)Si-based materials with high theoretical storage capacity and low working potential are...
The Li+ insertion and extraction characteristics at n-type and p-type Si(100) electrodes with differ...
By using Si(100) with different dopant type (n++-type (As) or p-type (B)), it is shown how metal-ass...
Amorphous hydrogenated silicon (a-Si:H) is known to be a perspective material for negative electrode...
Operando neutron reflectometry measurements were carried out to study the insertion of lithium into ...
Li-ion batteries are the energy storage of choice for portable electronics and are of extreme intere...
This work reports the Li+ uptake/extraction mechanism in silicon monoxide (SiO) as the negative elec...
Silicon (Si) is an attractive anode material for Li-ion batteries (LIBs) due to its high theoretical...
Silicon is a serious candidate to replace graphite in electrodes because it offers a specific capaci...
Silicon is a promising and attractive anode material to replace graphite for high capacity lithium i...
The knowledge of Li diffusion in lithium silicide (LixSi) is nowadays of importance for the Li-ion b...
Les travaux de thèse présentés dans ce manuscrit portent sur l’étude d’électrodes de silicium, matér...
Lithium-ion batteries enable a modern, mobile society and are a widely used source of portable energ...
The work presented here focuses on electrodes made of silicon, a promising material to replace graph...
Silicon is a promising negative electrode material for high‐energy‐density Li‐ion batteries (LiBs) b...
Abstract(#br)Si-based materials with high theoretical storage capacity and low working potential are...