Negative electrode active material and method for producing the same, negative electrode, and battery
A negative electrode contains a negative electrode active material. A negative electrode active material includes: lithium; a first element consisting of silicon or tin; and a second element consisting of oxygen or fluorine, in which the negative electrode active material contains substantially no compound phase of the first element and the lithium, and contains an amorphous phase containing the first element and the second element, and an ionic bond is formed between the lithium and the second element.
1. A negative electrode active material, comprising:
lithium;
a first element consisting of silicon; and
a second element consisting of oxygen, wherein
the negative electrode active material comprises heat treated lithium-containing SiO x (0.33<x<2),
the negative electrode active material contains Si—O—Li bond,
the negative electrode active material contains an amorphous state evaluated by X-ray diffraction (XRD),
a component ratio of a component including at least two of lithium, the first element, and the second element in the amorphous state is evaluated by X-ray photoelectron spectroscopy (XPS),
an ionic bond is formed between lithium and the second element,
no peak, in the X-ray diffraction (XRD), due to silicon is substantially observed, and
no peak, in a X-ray photoelectron spectroscopy (XPS) analysis of the negative electrode active material, due to a bond component between the first element and lithium is substantially observed.
2. The negative electrode active material according to claim 1 , wherein a content of lithium is in a range of from 10 atomic percent to 45 atomic percent.
3. The negative electrode active material according to claim 1 , wherein the negative electrode active material is in a form of particles.
4. The negative electrode active material according to claim 3 , further comprising a coating portion covering at least a portion of a particle surface,
wherein the coating portion contains at least one of carbon, a hydroxide, an oxide, a carbide, a nitride, a fluoride, a hydrocarbon compound, and an organic polymer compound.
5. A negative electrode, comprising:
a negative electrode active material layer containing a negative electrode active material, wherein the negative electrode active material comprises:
lithium;
a first element consisting of silicon; and
a second element consisting of oxygen, wherein
the negative electrode active material comprises heat treated lithium-containing SiO x (0.33<x<2),
the negative electrode active material contains Li Si bond and Si 0 Li bond,
the negative electrode active material contains an amorphous state evaluated by X-ray diffraction (XRD),
a component ratio of a component including at least two of lithium, the first element, and the second element in the amorphous state is evaluated by X-ray photoelectron spectroscopy (XPS),
an ionic bond is formed between lithium and the second element,
no peak, in the X-ray diffraction (XRD), due to silicon is substantially observed, and
no peak, in a X-ray photoelectron spectroscopy (XPS) analysis of the negative electrode active material, due to a bond component between the first element and lithium is substantially observed.
6. A battery, comprising:
a positive electrode;
a negative electrode; and
an electrolyte, wherein the negative electrode has a negative electrode active material layer containing a negative electrode active material, and the negative electrode active material comprises:
lithium;
a first element consisting of silicon; and
a second element consisting of oxygen, wherein
the negative electrode active material comprises heat treated lithium-containing SiO x (0.33<x<2),
the negative electrode active material contains Si—O—Li bond,
the negative electrode active material contains an amorphous state evaluated by X-ray diffraction (XRD),
a component ratio of a component including at least two of lithium, the first element, and the second element in the amorphous state is evaluated by X-ray photoelectron spectroscopy (XPS),
an ionic bond is formed between lithium and the second element,
no peak, in the X-ray diffraction (XRD), due to silicon is substantially observed, and
no peak, in a X-ray photoelectron spectroscopy (XPS) analysis of the negative electrode active material, due to a bond component between the first element and lithium is substantially observed.