Lithium ion batteries are encountering ever-growing demand for further increases in energy density. Li-rich layered oxides are considered a feasible solution to meet this demand because their specific capacities often surpass 200 mAhg(-1) due to the additional lithium occupation in the transition metal layers. However, this lithium arrangement, in turn, triggers cation mixing with the transition metals, causing phase transitions during cycling and loss of reversible capacity. Here we report a Li-rich layered surface bearing a consistent framework with the host, in which nickel is regularly arranged between the transition metal layers. This surface structure mitigates unwanted phase transitions, improving the cycling stability. This surface ...
Li-rich layered oxides are promising positive electrode candidates for next-generation high-energy L...
The energy density of layered oxide cathode materials increases with their Ni content, while the sta...
Li-rich layered oxides are promising positive electrode candidates for next-generation high-energy L...
Lithium ion batteries are encountering ever-growing demand for further increases in energy density. ...
Abstract(#br)Li-rich layered oxide cathode materials (LLOs) are regarded as promising next-generatio...
Li-rich layered oxides (LLOs) can deliver almost double the capacity of conventional electrode mater...
Ni‐rich layered lithium metal oxides are the cathode active materials of choice for high‐energy‐dens...
Ni-rich layered oxides and Li-rich layered oxides are topics of much research interest as cathodes f...
Nickel-rich layered oxides (NLOs) exhibit great potential to meet the ever-growing demand for furthe...
Li-rich layered oxides (LLOs) can deliver almost double the capacity of conventional electrode mater...
A facile Mn surface doping process is proposed to improve the thermal and structural stabilities of ...
Development of advanced high energy density lithium ion batteries is important for promoting electro...
The surface of the layered transition metal oxide cathode plays an important role in its function an...
The surface of the layered transition metal oxide cathode plays an important role in its function an...
Single-crystal Ni-rich layered cathodes have become the mainstream commercial lithium ion batteries ...
Li-rich layered oxides are promising positive electrode candidates for next-generation high-energy L...
The energy density of layered oxide cathode materials increases with their Ni content, while the sta...
Li-rich layered oxides are promising positive electrode candidates for next-generation high-energy L...
Lithium ion batteries are encountering ever-growing demand for further increases in energy density. ...
Abstract(#br)Li-rich layered oxide cathode materials (LLOs) are regarded as promising next-generatio...
Li-rich layered oxides (LLOs) can deliver almost double the capacity of conventional electrode mater...
Ni‐rich layered lithium metal oxides are the cathode active materials of choice for high‐energy‐dens...
Ni-rich layered oxides and Li-rich layered oxides are topics of much research interest as cathodes f...
Nickel-rich layered oxides (NLOs) exhibit great potential to meet the ever-growing demand for furthe...
Li-rich layered oxides (LLOs) can deliver almost double the capacity of conventional electrode mater...
A facile Mn surface doping process is proposed to improve the thermal and structural stabilities of ...
Development of advanced high energy density lithium ion batteries is important for promoting electro...
The surface of the layered transition metal oxide cathode plays an important role in its function an...
The surface of the layered transition metal oxide cathode plays an important role in its function an...
Single-crystal Ni-rich layered cathodes have become the mainstream commercial lithium ion batteries ...
Li-rich layered oxides are promising positive electrode candidates for next-generation high-energy L...
The energy density of layered oxide cathode materials increases with their Ni content, while the sta...
Li-rich layered oxides are promising positive electrode candidates for next-generation high-energy L...