Positive electrode, nonaqueous electrolyte energy storage device, method of producing positive electrode, and method of producing nonaqueous electrolyte energy storage device
A positive electrode according to one aspect of the present invention is a positive electrode for a nonaqueous electrolyte energy storage device, including a positive composite having a density of 3.1 g/cm 3 or more, in which the positive composite contains a positive active material containing nickel and a reducing organic acid. The nonaqueous electrolyte energy storage device according to one aspect of the present invention is a nonaqueous electrolyte energy storage device including the positive electrode.
1 . A positive electrode for a nonaqueous electrolyte energy storage device, comprising a positive composite having a density of 3.1 g/cm 3 or more and 4 g/cm 3 or less,
wherein the positive composite contains a positive active material containing nickel and citric acid,
the positive active material containing nickel includes at least one lithium transition metal composite oxide having a layered α-NaFeO2-type crystal structure, which is selected from a group consisting of Li[Li x Ni 1-x ]O 2 (0≤x<0.5), Li[Li x Ni α Co (1-x-α) ]O 2 (0≤x<0.5, 0<α<1) and Li[Li x Ni α Mn β Co (1-x-α-β] O 2 (0≤x<0.5, 0<α, 0<β, 0.5<α+β<1),
a content of nickel in a transition metal in the positive active material is 33 mol % or more and 70 mol % or less,
a content of the citric acid is 0.01 parts by mass or more and 0.08 parts by mass or less based on 100 parts by mass of the positive active material,
a content of the positive active material in the positive composite is 70% by mass or more and 99% by mass or less, and
an increase in surface resistance of the positive electrode after being stored for two weeks in an environment at a temperature of 30° C. and a relative humidity of 55% is suppressed as compared to a comparative positive electrode comprising a positive composite having the density of 3.1 g/cm 3 or more and 4 g/cm 3 or less and containing the positive active material but not containing the citric acid, and/or an increase in surface resistance of the positive electrode after being stored for two weeks in an environment at a temperature of 50° C. and a relative humidity of 75% is suppressed as compared to the comparative positive electrode.
2 . A nonaqueous electrolyte energy storage device comprising the positive electrode according to claim 1 .
3 . A method of producing a positive electrode for a nonaqueous electrolyte energy storage device, comprising forming a positive composite, having a density of 3.1 g/cm 3 or more and 4 g/cm 3 or less, with a positive composite paste,
wherein the positive composite paste contains a positive active material containing nickel and citric acid,
the positive active material containing nickel includes at least one lithium transition metal composite oxide having a layered α-NaFeO2-type crystal structure, which is selected from a group consisting of Li[Li x Ni 1-x ]O 2 (0≤x<0.5), Li[Li x Ni α Co (1-x-α) ]O 2 (0≤x<0.5, 0<α<1) and Li[Li x Ni α Mn β Co (1-x-α-β] O 2 (0≤x<0.5, 0<α, 0<β, 0.5<α+β<1),
a content of nickel in a transition metal in the positive active material is 33 mol % or more and 70 mol % or less,
a content of the citric acid is 0.01 parts by mass or more and 0.08 parts by mass or less based on 100 parts by mass of the positive active material,
a content of the positive active material in the positive composite is 70% by mass or more and 99% by mass or less, and
in the positive electrode produced by the method, an increase in surface resistance after being stored for two weeks in an environment at a temperature of 30° C. and a relative humidity of 55% is suppressed as compared to a positive electrode comprising a comparative positive composite having the density of 3.1 g/cm 3 or more and 4 g/cm 3 or less and containing the positive active material but not containing the citric acid, and/or an increase in surface resistance of the positive electrode after being stored for two weeks in an environment at a temperature of 50° C. and a relative humidity of 75% is suppressed as compared to the comparative positive electrode.
4 . A method of producing a nonaqueous electrolyte energy storage device comprising the method of producing a positive electrode according to claim 3 .
5 . The positive electrode according to claim 1 ,
wherein the positive composite further contains a thickener including at least one of carboxymethylcellulose or methylcellulose.
6 . The positive electrode according to claim 1 ,
wherein the positive composite further contains a thickener having a functional group reactive with lithium, and the functional group is deactivated by methylation in advance.
7 . The positive electrode according to claim 1 , wherein a content of the positive active material in the positive composite is 70% by mass or more and 90.5% by mass or less.
8 . The method according to claim 3 , wherein a content of the positive active material in the positive composite is 70% by mass or more and 90.5% by mass or less.
9 . The positive electrode according to claim 1 , wherein the density of the positive composite is 3.1 g/cm 3 or more and 3.3 g/cm 3 or less.
10 . The method according to claim 3 , wherein the density of the positive composite is 3.1 g/cm 3 or more and 3.3 g/cm 3 or less.
11 . A positive electrode for a nonaqueous electrolyte energy storage device, comprising a positive composite having a density of 3.1 g/cm 3 or more and 3.3 g/cm 3 or less,
wherein the positive composite contains a positive active material containing nickel and citric acid,
the positive active material containing nickel includes at least one lithium transition metal composite oxide having a layered α-NaFeO2-type crystal structure, which is LiNi 1/3 Mn 1/3 Co 1/3 O 2 ,
a content of the citric acid is 0.01 parts by mass or more and 0.08 parts by mass or less based on 100 parts by mass of the positive active material,
a content of the positive active material in the positive composite is 70% by mass or more and 90.5% by mass or less, and
an increase in surface resistance of the positive electrode after being stored for two weeks in an environment at a temperature of 30° C. and a relative humidity of 55% is suppressed as compared to a comparative positive electrode comprising a positive composite having the density of 3.1 g/cm 3 or more and 3.3 g/cm 3 or less and containing the positive active material but not containing the citric acid, and/or an increase in surface resistance of the positive electrode after being stored for two weeks in an environment at a temperature of 50° C. and a relative humidity of 75% is suppressed as compared to the comparative positive electrode.
12 . The positive electrode according to claim 1 , further comprising a substrate selected from a group consisting of aluminum, titanium, tantalum, stainless steel and an alloy thereof.
13 . The positive electrode according to claim 12 ,
wherein a positive composite layer formed of the positive composite is stacked on the substrate, and
an average thickness of the positive composite layer is 30 μm or more and 200 μm or less.