Layered LiMO2 (M = Ni, Co, Mn, and Al mixture) cathode materials used for Li-ion batteries are reputed to be highly reactive through their surface, where the chemistry changes rapidly when exposed to ambient air. However, conventional electron/spectroscopy-based techniques or thermogravimetric analysis fails to capture the underlying atom-scale chemistry of vulnerable Li species. To study the evolution of the surface composition at the atomic scale, here we use atom probe tomography and probed the surface species formed during exposure of a LiNi0.8Mn0.1Co0.1O2 (NMC811) cathode material to air. The compositional analysis evidences the formation of Li2CO3. Site specific examination from a cracked region of an NMC811 particle also suggests the...
Understanding the evolution of chemical composition and morphology of battery materials during elect...
Ni-rich LiNi1–x–yMnxCoyO2 (NMC) cathode materials are being aggressively developed for high-voltage ...
Surface properties of cathode particles play important roles in the transport of ions and electrons ...
Nickel-rich layered cathode materials have the potential to enable cheaper and higher energy lithium...
Layered LiNi[subscript 0.8]Mn[subscript 0.1]Co[subscript 0.1]O[subscript 2](NMC811) is one of the hi...
Lithium transition metal oxides are Li host structures used as cathodes for Li-ion batteries. Li is ...
The surface of the layered transition metal oxide cathode plays an important role in its function an...
The surface reactivity of Ni-rich layered transition metal oxides is instrumental to the performance...
The safety issue of lithium-ion batteries is a crucial factor limiting their large-scale application...
Voltage and capacity fading of layer structured lithium and manganese rich (LMR) transition metal ox...
International audienceThe surface reactivity of Ni-rich layered transition metal oxides is instrumen...
This project focuses on recovering the cathode materials of lithium ion batteries through atomic lay...
Li-rich cathode materials are regarded as ideal cathode materials, owing to their excellent electroc...
Layered lithium transition metal oxides, in particular, NMCs (LiNixCoyMnzO2) represent a family of p...
Gas formation caused by parasitic side reactions is one of the fundamental concerns in state-of-the-...
Understanding the evolution of chemical composition and morphology of battery materials during elect...
Ni-rich LiNi1–x–yMnxCoyO2 (NMC) cathode materials are being aggressively developed for high-voltage ...
Surface properties of cathode particles play important roles in the transport of ions and electrons ...
Nickel-rich layered cathode materials have the potential to enable cheaper and higher energy lithium...
Layered LiNi[subscript 0.8]Mn[subscript 0.1]Co[subscript 0.1]O[subscript 2](NMC811) is one of the hi...
Lithium transition metal oxides are Li host structures used as cathodes for Li-ion batteries. Li is ...
The surface of the layered transition metal oxide cathode plays an important role in its function an...
The surface reactivity of Ni-rich layered transition metal oxides is instrumental to the performance...
The safety issue of lithium-ion batteries is a crucial factor limiting their large-scale application...
Voltage and capacity fading of layer structured lithium and manganese rich (LMR) transition metal ox...
International audienceThe surface reactivity of Ni-rich layered transition metal oxides is instrumen...
This project focuses on recovering the cathode materials of lithium ion batteries through atomic lay...
Li-rich cathode materials are regarded as ideal cathode materials, owing to their excellent electroc...
Layered lithium transition metal oxides, in particular, NMCs (LiNixCoyMnzO2) represent a family of p...
Gas formation caused by parasitic side reactions is one of the fundamental concerns in state-of-the-...
Understanding the evolution of chemical composition and morphology of battery materials during elect...
Ni-rich LiNi1–x–yMnxCoyO2 (NMC) cathode materials are being aggressively developed for high-voltage ...
Surface properties of cathode particles play important roles in the transport of ions and electrons ...