Patent classifications
H01G11/06
NONAQUEOUS ELECTROLYTE ENERGY STORAGE DEVICE AND METHOD FOR MANUFACTURING THE SAME
An aspect of the present invention is a nonaqueous electrolyte energy storage device that includes a negative electrode including a lithium alloy and a nonaqueous electrolyte containing a fluorinated solvent, in which the lithium alloy contains silver, and the content of silver with respect to the total content of lithium and silver in the lithium alloy is 3% by mass or more and 20% by mass or less. Another aspect of the present invention is a nonaqueous electrolyte energy storage device that includes a negative electrode including a lithium alloy and a nonaqueous electrolyte including a lithium salt containing fluorine, in which the lithium alloy contains silver, and the content of silver with respect to the total content of lithium and silver in the lithium alloy is 3% by mass or more and 20% by mass or less.
ENERGY STORAGE DEVICE
An energy storage device according to one aspect of the present invention includes: a negative electrode including a negative electrode substrate and a negative active material layer layered directly or indirectly on a surface of the negative electrode substrate; and a positive electrode. The negative active material layer contains a negative active material. The negative active material contains non-graphitizable carbon. In one direction of the negative electrode substrate, at least one end edge side of the negative active material layer is thicker than a central portion present between the one end edge side and the other end edge side facing the one end edge side. When a true density of the non-graphitizable carbon is A [g/cm.sup.3], an amount of charge B [mAh/g] of the negative electrode in a fully charged state satisfies the following formula 1.
MANUFACTURING METHOD OF ELECTRODE SLURRY, MANUFACTURING METHOD OF ELECTRODE, MANUFACTURING METHOD OF POSITIVE ELECTRODE, ELECTRODE FOR SECONDARY BATTERY, AND POSITIVE ELECTRODE FOR SECONDARY BATTERY
A method for manufacturing a novel electrode is provided. The method includes the steps of applying, to a current collector, a mixture comprising an active material, a conductive additive comprising a graphene compound, a binder, and a dispersion medium; performing a drying treatment on the mixture; performing a heat treatment on the mixture at a temperature higher than a temperature of the drying treatment; reducing the graphene compound in the mixture by a chemical reaction using a reducing agent; and performing a thermal reduction treatment on the mixture at a temperature higher than the temperature of the heat treatment.
ELECTROCHEMICAL DEVICE
An electrochemical device includes a positive electrode, a negative electrode, and an electrolyte having lithium ion conductivity. The positive electrode includes a positive current collector and a positive electrode mixture layer supported on the positive current collector. The positive electrode mixture layer contains a positive electrode active material reversibly doped with an anion. The negative electrode includes a negative current collector and a negative electrode mixture layer supported on the negative current collector. The negative electrode mixture layer contains a negative electrode active material reversibly doped with lithium ions. The negative electrode active material contains non-graphitizable carbon. A ratio Mp/Mn of a mass Mp of the positive electrode active material supported on a unit area of the positive electrode to a mass Mn of the negative electrode active material supported on a unit area of the negative electrode is in a range from 1.1 to 2.5, inclusive.
METHOD FOR MANUFACTURING OR RECYCLING MEMBER FOR ELECTROCHEMICAL DEVICE, METHOD FOR MANUFACTURING ELECTROCHEMICAL DEVICE, MEMBER FOR ELECTROCHEMICAL DEVICE, AND ELECTROCHEMICAL DEVICE
A purpose of the present invention is to provide a method for manufacturing, etc., a member for an electrochemical device in which the problem of irreversible change in the composition of the electrochemical device due to solvent depletion, moisture absorption, etc., during manufacturing of the electrochemical devices is unlikely to occur. This method for manufacturing a member for an electrochemical device includes performing at least one shaping operation described in the present specification on a shaping material composition that comprises: at least one filler (F); a plasticizer (P-S), being water, an ionic liquid, or a mixture thereof; and a polymer (P1), the shaping material composition being substantially free of an organic solvent and having plasticity and self-supporting property.
ELECTROCHEMICAL DEVICE
An electrochemical device includes a positive electrode that includes an active layer containing a polyaniline compound. An infrared absorption spectrum of the active layer has a first peak, a second peak, a third peak, and a fourth peak that are derived from the polyaniline compound. The first peak appears at a wave number in a range from 1,100 cm.sup.−1 to 1,200 cm.sup.−1, inclusive. The second peak appears at a wave number in a range of more than 1,200 cm.sup.−1 and less than or equal to 1,400 cm.sup.−1. The third peak appears at a wave number in a range from 1,450 cm.sup.−1 to 1,550 cm.sup.−1, inclusive. And the fourth peak appears at a wave number in a range of more than 1,550 cm.sup.−1 and less than or equal to 1,650 cm.sup.−1. In a discharged state, a ratio I.sub.D3/I.sub.D0 of a height I.sub.D3 of the third peak to a total I.sub.D0 of heights of the first peak, the second peak, the third peak, and the fourth peak ranges from 0.18 to 1.42, inclusive.
ELECTROCHEMICAL DEVICE
An electrochemical device includes a positive electrode that includes an active layer containing a polyaniline compound. An infrared absorption spectrum of the active layer has a first peak, a second peak, a third peak, and a fourth peak that are derived from the polyaniline compound. The first peak appears at a wave number in a range from 1,100 cm.sup.−1 to 1,200 cm.sup.−1, inclusive. The second peak appears at a wave number in a range of more than 1,200 cm.sup.−1 and less than or equal to 1,400 cm.sup.−1. The third peak appears at a wave number in a range from 1,450 cm.sup.−1 to 1,550 cm.sup.−1, inclusive. And the fourth peak appears at a wave number in a range of more than 1,550 cm.sup.−1 and less than or equal to 1,650 cm.sup.−1. In a discharged state, a ratio I.sub.D3/I.sub.D0 of a height I.sub.D3 of the third peak to a total I.sub.D0 of heights of the first peak, the second peak, the third peak, and the fourth peak ranges from 0.18 to 1.42, inclusive.
ELECTROCHEMICAL DEVICE
Provided is an electrochemical device including a negative electrode, a positive electrode, and a separator disposed between the negative electrode and the positive electrode. In the electrochemical device, the negative electrode is an electrode containing magnesium, and is in contact with a fullerene analogue-containing layer containing a fullerene analogue. The electrolytic solution of the electrochemical device includes a solvent and a magnesium salt contained in the solvent.
Electrode coated with a film obtained from an aqueous solution comprising a water-soluble binder, production method thereof and uses of same
A method of preparing an electrochemical electrode which is partially or totally covered with a film that is obtained by spreading an aqueous solution comprising a water-soluble binder over the electrode and subsequently drying same. The production cost of the electrodes thus obtained is reduced and the surface porosity thereof is associated with desirable resistance values.
Electrode coated with a film obtained from an aqueous solution comprising a water-soluble binder, production method thereof and uses of same
A method of preparing an electrochemical electrode which is partially or totally covered with a film that is obtained by spreading an aqueous solution comprising a water-soluble binder over the electrode and subsequently drying same. The production cost of the electrodes thus obtained is reduced and the surface porosity thereof is associated with desirable resistance values.