Spherical LiFe0.6Mn0.4PO4/C particles with high tap density were successfully synthesized by sintering spherical precursor powders prepared by a modified spray drying method with a double carbon coating process. The obtained secondary spheres were made of carbon-coated nanocrystallines (similar to 100 nm), exhibiting a high tap density of 1.4 g cm(-3). The LiFe0.6Mn0.4PO4/C microspheres had a reversible capacity of 160.2 mAh g(-1) at 0.1C, and a volume energy density of 801.5 Wh L-1 which is nearly 1.4 times that of their nano-sized counterparts. This spherical material showed remarkable rate capability by maintaining 106.3 mAh g(-1) at 20C, as well as excellent cycleablity with 98.9% capacity retention after 100 cycles at 2C and 200 cycles...
A microspherical, hollow LiFePO<sub>4</sub> (LFP) cathode material with polycrystal structure was si...
A one-step hydrothermal method is reported for synthesizing carbon spheres (Cs) with sucrose as the ...
To overcome the low lithium ion diffusion and slow electron transfer, a hollow micro sphere LiFePO4/...
Composite LiFe0.4Mn0.6PO4/C microspheres are considered advanced cathode materials for electric vehi...
Carbon-coated LiFePO4 (C-LiFePO4) with micron particle size (6 mu m) and high tap density (1.6 g cm(...
A novel preparation technique was developed for synthesizing carbon-coated LiFePO nanoparticles thro...
Porous LiFePO4/C microspheres were synthesized by a novel hydrothermal reaction combined with high-t...
Mesoporous LiFePO4/C microspheres consisting of LiFePO4 nanoparticles are successfully fabricated by...
Because of the on-going miniaturization of devices powered by lithium-ion batteries, the realization...
Porous LiFePO4/C microspheres were synthesized by a novel hydrothermal reaction combined with high-t...
Abstract—LiFePO4/C microspheres were synthesized by a rheological phase method using nanoplates asse...
To overcome a major limitation of volumetric energy density, we prepared micrometer-sized LiFePO4 pa...
A short synthesis time and high tap density are key conditions for the commercialization of electrod...
Spherical LiFePO4/C powders were successfully produced at a rate of 100 g/h using a large type spray...
Nano-micro-structured spherical LiFePO4/C composite is synthesized via a ball-milling-assisted spray...
A microspherical, hollow LiFePO<sub>4</sub> (LFP) cathode material with polycrystal structure was si...
A one-step hydrothermal method is reported for synthesizing carbon spheres (Cs) with sucrose as the ...
To overcome the low lithium ion diffusion and slow electron transfer, a hollow micro sphere LiFePO4/...
Composite LiFe0.4Mn0.6PO4/C microspheres are considered advanced cathode materials for electric vehi...
Carbon-coated LiFePO4 (C-LiFePO4) with micron particle size (6 mu m) and high tap density (1.6 g cm(...
A novel preparation technique was developed for synthesizing carbon-coated LiFePO nanoparticles thro...
Porous LiFePO4/C microspheres were synthesized by a novel hydrothermal reaction combined with high-t...
Mesoporous LiFePO4/C microspheres consisting of LiFePO4 nanoparticles are successfully fabricated by...
Because of the on-going miniaturization of devices powered by lithium-ion batteries, the realization...
Porous LiFePO4/C microspheres were synthesized by a novel hydrothermal reaction combined with high-t...
Abstract—LiFePO4/C microspheres were synthesized by a rheological phase method using nanoplates asse...
To overcome a major limitation of volumetric energy density, we prepared micrometer-sized LiFePO4 pa...
A short synthesis time and high tap density are key conditions for the commercialization of electrod...
Spherical LiFePO4/C powders were successfully produced at a rate of 100 g/h using a large type spray...
Nano-micro-structured spherical LiFePO4/C composite is synthesized via a ball-milling-assisted spray...
A microspherical, hollow LiFePO<sub>4</sub> (LFP) cathode material with polycrystal structure was si...
A one-step hydrothermal method is reported for synthesizing carbon spheres (Cs) with sucrose as the ...
To overcome the low lithium ion diffusion and slow electron transfer, a hollow micro sphere LiFePO4/...