CATHODE ACTIVE MATERIAL FOR SOLID LITHIUM SECONDARY BATTERY, AND METHOD FOR MANUFACTURING CATHODE ACTIVE MATERIAL FOR SOLID LITHIUM SECONDARY BATTERY
A cathode active material for solid lithium secondary battery is provided, containing a lithium metal composite oxide having a layered crystal structure, and a coating material which coats at least a part of the lithium metal composite oxide, in which the coating material contains an element A, the element A is one or more elements selected from the group consisting of Nb, Ta, Ti, Al, B, P, W, Zr, La, and Ge, and (1) and (2) are satisfied.
1 . A cathode active material for solid lithium secondary battery, comprising:
a lithium metal composite oxide having a layered crystal structure; and
a coating material which coats at least a part of the lithium metal composite oxide,
wherein the coating material contains an element A,
the element A is one or more elements selected from the group consisting of Nb, Ta, Ti, Al, B, P, W, Zr, La, and Ge, and
the following (1) and (2) are satisfied,
(1) a surface presence rate of the coating material is 70% or more, and
(2) 0.10<(Va 0.9 /S N )×(Vd 0.5 −Va 0.5 )/Va 0.9 <2.80,
[S N is a BET specific surface area (unit: m 2 /g) of the cathode active material for solid lithium secondary battery, which is obtained by a measurement using a nitrogen adsorption method,
Va 0.5 is a water vapor adsorption amount (unit: cm 3 (STP)/g) of the cathode active material for solid lithium secondary battery in a case where, in an adsorption isotherm obtained by a measurement using a water vapor adsorption method, a relative pressure p/p o with a saturated vapor pressure p 0 is 0.5,
Va 0.9 is a water vapor adsorption amount (unit: cm 3 (STP)/g) of the cathode active material for solid lithium secondary battery in a case where, in the adsorption isotherm obtained by the measurement using the water vapor adsorption method, the relative pressure p/p o is 0.9, and
Vd 0.5 is a water vapor adsorption amount (unit: cm 3 (STP)/g) of the cathode active material for solid lithium secondary battery in a case where, in a desorption isotherm obtained by a measurement using a water vapor adsorption method, the relative pressure p/p o is 0.5].
2 . The cathode active material for solid lithium secondary battery according to claim 1 ,
wherein S H , S N , Va 0.5 , Va 0.9 , and Vd 0.5 satisfy the following (3),
0.1
<
(
S
H
/
S
N
)
×
(
Vd
0.5
-
Va
0.5
)
/
Va
0.9
<
3.1
,
(
3
)
[S H is a BET specific surface area (unit: m 2 /g) of the cathode active material for solid lithium secondary battery, which is obtained by a measurement using a water vapor adsorption method].
3 . The cathode active material for solid lithium secondary battery according to claim 1 ,
wherein the cathode active material is used by being brought into contact with a solid electrolyte.
4 . The cathode active material for solid lithium secondary battery according to claim 3 ,
wherein the solid electrolyte is a sulfide-based solid electrolyte.
5 . The cathode active material for solid lithium secondary battery according to claim 1 ,
wherein the element A is Nb, P, or B.
6 . The cathode active material for solid lithium secondary battery according to claim 1 ,
wherein the following formula (I) is satisfied,
(Li[Li x (Ni (1-y-z-w) Co y Mn z M w ) 1-x ]O 2 (I)
(here, M is at least one element selected from the group consisting of Fe, Cu, Mg, Al, W, B, P, Mo, Zn, Sn, Zr, Ga, La, Ti, Nb, Ta, Ge, and V, and −0.10≤x≤0.30, 0≤y≤0.40, 0≤z≤0.40, and 0<w≤0.10 are satisfied).
7 . A method for manufacturing a cathode active material for solid lithium secondary battery, the method comprising:
a coating step of coating at least a part of a surface of a lithium metal composite oxide using a coating device,
wherein the coating device used in the coating step includes a treatment section in which the lithium metal composite oxide is flowable, and further includes a two-fluid nozzle which jets, toward the lithium metal composite oxide, a two-fluid jet containing a liquid coating raw material containing an element A and a carrier gas,
the element A is one or more elements selected from the group consisting of Nb, Ta, Ti, Al, B, P, W, Zr, La, and Ge,
the lithium metal composite oxide satisfies the following (A), and
Q g , which is a flow rate (unit: g/min) of the carrier gas, and Q l , which is a flow rate (unit: g/min) of the coating raw material, satisfy the following (B),
0.1
<
Vl
0.9
/
L
N
<
6.8
,
(
A
)
(L N is a BET specific surface area (unit: m 2 /g) of the lithium metal composite oxide, which is measured by a nitrogen adsorption method, and
Vl 0.9 is a water vapor adsorption amount (unit: cm 3 (STP)/g) of the lithium metal composite oxide in a case where, in an adsorption isotherm of a water vapor adsorption method, a relative pressure p/p o with a saturated vapor pressure p 0 is 0.9), and
0.6
<
Q
g
/
Q
l
≤
25.
.
(
B
)
8 . The method for manufacturing a cathode active material for solid lithium secondary battery according to claim 7 , further comprising, after the coating step:
a heating step.
9 . The method for manufacturing a cathode active material for solid lithium secondary battery according to claim 8 ,
wherein the heating step is a step of performing heating at a temperature of 100° C. or higher and 500° C. or lower for 1 hour or longer.
10 . The method for manufacturing a cathode active material for solid lithium secondary battery according to claim 7 ,
wherein the carrier gas is a gas having nitrogen as a main component.
11 . The method for manufacturing a cathode active material for solid lithium secondary battery according to claim 7 ,
wherein the cathode active material for solid lithium secondary battery satisfies the following formula (I),
(Li[Li x (Ni (1-y-z-w) Co y Mn z M w ) 1-x ]O 2 (I)
(here, M is at least one element selected from the group consisting of Fe, Cu, Mg, Al, W, B, P, Mo, Zn, Sn, Zr, Ga, La, Ti, Nb, Ta, Ge, and V, and −0.10≤x≤0.30, 0≤y≤0.40, 0≤z≤0.40, and 0<w≤0.10 are satisfied).
12 . The method for manufacturing a cathode active material for solid lithium secondary battery according to claim 7 ,
wherein the coating step is a step of performing the coating using a roll-to-roll flow coating device.
13 . The cathode active material for solid lithium secondary battery according to claim 2 ,
wherein the cathode active material is used by being brought into contact with a solid electrolyte.
14 . The cathode active material for solid lithium secondary battery according to claim 2 ,
wherein the element A is Nb, P, or B.
15 . The cathode active material for solid lithium secondary battery according to claim 2 ,
wherein the following formula (I) is satisfied,
(Li[Li x (Ni (1-y-z-w) Co y Mn z M w ) 1-x ]O 2 (I)
(here, M is at least one element selected from the group consisting of Fe, Cu, Mg, Al, W, B, P, Mo, Zn, Sn, Zr, Ga, La, Ti, Nb, Ta, Ge, and V, and −0.10≤x≤0.30, 0≤y≤0.40, 0≤z≤0.40, and 0<w≤0.10 are satisfied).
16 . The method for manufacturing a cathode active material for solid lithium secondary battery according to claim 8 ,
wherein the carrier gas is a gas having nitrogen as a main component.
17 . The method for manufacturing a cathode active material for solid lithium secondary battery according to claim 8 ,
wherein the cathode active material for solid lithium secondary battery satisfies the following formula (I),
(Li[Li x (Ni (1-y-z-w) Co y Mn z M w ) 1-x ]O 2 (I)
(here, M is at least one element selected from the group consisting of Fe, Cu, Mg, Al, W, B, P, Mo, Zn, Sn, Zr, Ga, La, Ti, Nb, Ta, Ge, and V, and −0.10≤x≤0.30, 0≤y≤0.40, 0≤z≤0.40, and 0<w≤0.10 are satisfied).
18 . The method for manufacturing a cathode active material for solid lithium secondary battery according to claim 8 ,
wherein the coating step is a step of performing the coating using a roll-to-roll flow coating device.