LiCoPO4 (LCP) is a challenging high voltage positive electrode material for next-generation secondary Liion cells. Doping the LCP olivine lattice with iron and annealing the material at high temperature result in improved and stable performances in lithium cells. Here we investigate the structural effects of iron doping and annealing at high temperature by advanced synchrotron X-ray techniques (X-ray diffraction and absorption) in close comparison with the corresponding performances in lithium cells (lithium deinsertion/ insertion) and the ionic diffusion coefficients evaluated by galvanostatic intermittent titration tests. The partial substitution of cobalt ions in the olivine lattice with iron ions, 2+ or 3+, strongly affects the l...
In this study we address the Li-ion de-insertion/insertion mechanisms from/into the lattice of the m...
Carbon coated olivine Pnma LiCoPO4 (LCP/C) and Fe-substituted LiCo0.8Fe0.2PO4 (LCFP/C) were synthesi...
Lithium iron phosphate (LFP) has attracted tremendous attention as an electrode material for next-ge...
LiCoPO4 (LCP) is a challenging high voltage positive electrode material for next-generation secondar...
LiCoPO4 (LCP) is a challenging high voltage positive electrode material for next-generation secondar...
LiCoPO4 (LCP) is a promising candidate as alternative cathode for high-voltage lithium-ion batteries...
LiCoPO4 (LCP) is a promising candidate as alternative cathode for high-voltage lithium-ion batteries...
LiCoPO4 (LCP) is a promising candidate as alternative cathode for high-voltage lithium-ion batteries...
LiCoPO4(LCP) is a promising candidate as alternative cathode for high-voltage lithium-ion batteries....
Transition metal substitution is a key strategy to optimize the functional properties of advanced cr...
In this study we address the Li-ion de-insertion/insertion mechanisms from/into the lattice of the m...
In this study we address the Li-ion de-insertion/insertion mechanisms from/into the lattice of the m...
In this study we address the Li-ion de-insertion/insertion mechanisms from/into the lattice of the m...
Transition metal substitution is a key strategy to optimize the functional properties of advanced cr...
Transition metal substitution is a key strategy to optimize the functional properties of advanced cr...
In this study we address the Li-ion de-insertion/insertion mechanisms from/into the lattice of the m...
Carbon coated olivine Pnma LiCoPO4 (LCP/C) and Fe-substituted LiCo0.8Fe0.2PO4 (LCFP/C) were synthesi...
Lithium iron phosphate (LFP) has attracted tremendous attention as an electrode material for next-ge...
LiCoPO4 (LCP) is a challenging high voltage positive electrode material for next-generation secondar...
LiCoPO4 (LCP) is a challenging high voltage positive electrode material for next-generation secondar...
LiCoPO4 (LCP) is a promising candidate as alternative cathode for high-voltage lithium-ion batteries...
LiCoPO4 (LCP) is a promising candidate as alternative cathode for high-voltage lithium-ion batteries...
LiCoPO4 (LCP) is a promising candidate as alternative cathode for high-voltage lithium-ion batteries...
LiCoPO4(LCP) is a promising candidate as alternative cathode for high-voltage lithium-ion batteries....
Transition metal substitution is a key strategy to optimize the functional properties of advanced cr...
In this study we address the Li-ion de-insertion/insertion mechanisms from/into the lattice of the m...
In this study we address the Li-ion de-insertion/insertion mechanisms from/into the lattice of the m...
In this study we address the Li-ion de-insertion/insertion mechanisms from/into the lattice of the m...
Transition metal substitution is a key strategy to optimize the functional properties of advanced cr...
Transition metal substitution is a key strategy to optimize the functional properties of advanced cr...
In this study we address the Li-ion de-insertion/insertion mechanisms from/into the lattice of the m...
Carbon coated olivine Pnma LiCoPO4 (LCP/C) and Fe-substituted LiCo0.8Fe0.2PO4 (LCFP/C) were synthesi...
Lithium iron phosphate (LFP) has attracted tremendous attention as an electrode material for next-ge...