Material for negative electrode of non-aqueous electrolyte secondary battery, process for producing the same, negative electrode and battery
A negative electrode material for non-aqueous electrolyte secondary batteries, comprises: a carbon material having a sphericity of at least 0.8, and exhibiting an average (002) interlayer spacing d 002 of 0.365-0.400 nm, a crystallite size in a c-axis direction Lc (002) of 1.0-3.0 nm, as measured by X-ray diffractometry, a hydrogen-to-carbon atomic ratio (H/C) of at most 0.1 as measured by elementary analysis, and an average particle size Dv 50 of 1-20 μm. The negative electrode material is spherical and exhibits excellent performances including high output performance and durability.
1. A negative electrode material for non-aqueous electrolyte secondary batteries, comprising: a carbon material having a sphericity of at least 0.8, and exhibiting an average (002) interlayer spacing d 002 of 0.365-0.400 nm, a crystallite size in a c-axis direction LC (002) of 1.0-3.0 nm, as measured by X-ray diffractometry, a hydrogen-to-carbon atomic ratio (H/C) of at most 0.1 as measured by elementary analysis, and an average particle size Dv 50 (μm) of 1-20 μm, and nitrogen in an amount of 0.5-5 wt %; wherein the carbon material further exhibits a specific surface area S (m 2 /g) giving a product S×Dv 50 of 3-40 and the negative electrode material has a ratio D 4 /D 1 of at most 3.0 between a weight-average particle size D 4 and a length average particle size D 1 .
2. A negative electrode material according to claim 1 , comprising a carbonization product of a vinyl resin.
3. A negative electrode material according to claim 1 , having a bulk specific gravity of at least 0.40 and below 0.60.
4. A negative electrode material according to claim 1 , exhibiting an exothermic peak temperature of at least 600° C.
5. A negative electrode material according to claim 1 , comprising a surface of the carbon material coated with 0.1-10 wt. % of a silicon compound.
6. A process for producing a negative electrode material for non-aqueous electrolyte secondary batteries according to claim 1 , comprising: oxidizing a spherical vinyl resin obtained through suspension polymerization to oxidation at a temperature of 150-400° C. in an oxidizing gas atmosphere to provide a carbon precursor and carbonizing the carbon precursor in an inert gas atmosphere.
7. A negative electrode for non-aqueous electrolyte secondary batteries, having a layer of active substance comprising a negative electrode material according to claim 1 and formed at a coating rate of at most 60 g/m 2 .
8. A non-aqueous electrolyte secondary battery having a negative electrode according to claim 7 .
9. A negative electrode material for non-aqueous electrolyte secondary batteries, comprising: a carbon material having a sphericity of at least 0.8, and exhibiting an average (002) interlayer spacing d 002 of 0.365-0.400 nm, a crystallite size in a c-axis direction LC (002) of 1.0-3.0 nm, as measured by X-ray diffractometry, a hydrogen-to-carbon atomic ratio (H/C) of at most 0.1 as measured by elementary analysis, and an average particle size Dv 50 (μm) of 1-20 μm, and nitrogen in an amount of 0.5-5 wt %; wherein the carbon material is a carbonization product of a vinyl resin and the negative electrode material has a ratio D 4 /D 1 of at most 3.0 between a weight-average particle size D 4 and a length average particle size D 1 .
10. A negative electrode material for non-aqueous electrolyte secondary batteries, comprising: a carbon material having a sphericity of at least 0.8, and exhibiting an average (002) interlayer spacing d 002 of 0.365-0.400 nm, a crystallite size in a c-axis direction Lc (002) of 1.0-3.0 nm, as measured by X-ray diffractometry, a hydrogen-to-carbon atomic ratio (H/C) of at most 0.1 as measured by elementary analysis, and an average particle size Dv 50 of 1-20 μm; wherein the carbon material further exhibits a nitrogen content of 0.5-5 wt. % and the negative electrode material has a ratio D 4 /D 1 of at most 3.0 between a weight-average particle size D 4 and a length average particle size D 1 .