Commercially used LiNi$_{1/3}$Mn$_{1/3}$Co$_{1/3}$O$_2$ (NMC111) in lithium-ion batteries mainly consists of a large-grained nonporous active material powder prepared by coprecipitation. However, nanomaterials are known to have extreme influence on gravimetric energy density and rate performance but are not used at the industrial scale because of their reactivity, low tap density, and diminished volumetric energy density. To overcome these problems, the build-up of hierarchically structured active materials and electrodes consisting of microsized secondary particles with a primary particle scale in the nanometer range is preferable. In this paper, the preparation and detailed characterization of porous hierarchically structured active mater...
Porosity is frequently specified as only a value to describe the microstructure of a battery electro...
Four NMC materials are synthesized by co-precipitation. They exhibit a hierarchical architecture mad...
The worldwide energy crisis boosted the development of environmentally benign energy infrastructures...
Commercially used LiNi1/3Mn1/3Co1/3O2 (NMC111) in lithium-ion batteries mainly consists of a large-g...
Fast discharge capability of automotive batteries not only affects the acceleration and climbing per...
Although being considered as one of the most promising cathode materials for Lithium-ion batteries (...
The layered oxide LiNi0.6Mn0.2Co0.2O2 is a very attractive positive electrode material, as shown by ...
Tuning geometrical parameters of lithium-mixed transition-metal oxide (LiTM) cathode materials is a ...
Since their successful commercialization in 1990s, lithium-ion batteries (LIBs) have been widely app...
A spatially resolved electrochemical model is applied to single porous lithium–nickel–manganese–coba...
The advent of modern Lithium Ion Batteries (LIBs) and energy storage technologies will rely on innov...
A series of samples of LiNi1/2Mn3/2O4 were prepared by different synthetic methods. They displayed a...
Systematic studies have been done to develop a low cost, environmental-friendly facile fabrication p...
Layered lithium transition metal oxides, in particular, NMCs (LiNixCoyMnzO2) represent a family of p...
Porosity is frequently specified as only a value to describe the microstructure of a battery electro...
Four NMC materials are synthesized by co-precipitation. They exhibit a hierarchical architecture mad...
The worldwide energy crisis boosted the development of environmentally benign energy infrastructures...
Commercially used LiNi1/3Mn1/3Co1/3O2 (NMC111) in lithium-ion batteries mainly consists of a large-g...
Fast discharge capability of automotive batteries not only affects the acceleration and climbing per...
Although being considered as one of the most promising cathode materials for Lithium-ion batteries (...
The layered oxide LiNi0.6Mn0.2Co0.2O2 is a very attractive positive electrode material, as shown by ...
Tuning geometrical parameters of lithium-mixed transition-metal oxide (LiTM) cathode materials is a ...
Since their successful commercialization in 1990s, lithium-ion batteries (LIBs) have been widely app...
A spatially resolved electrochemical model is applied to single porous lithium–nickel–manganese–coba...
The advent of modern Lithium Ion Batteries (LIBs) and energy storage technologies will rely on innov...
A series of samples of LiNi1/2Mn3/2O4 were prepared by different synthetic methods. They displayed a...
Systematic studies have been done to develop a low cost, environmental-friendly facile fabrication p...
Layered lithium transition metal oxides, in particular, NMCs (LiNixCoyMnzO2) represent a family of p...
Porosity is frequently specified as only a value to describe the microstructure of a battery electro...
Four NMC materials are synthesized by co-precipitation. They exhibit a hierarchical architecture mad...
The worldwide energy crisis boosted the development of environmentally benign energy infrastructures...