CATHODE MATERIAL AND PROCESS
A process for producing a lithium nickel metal oxide material is provided together with a particulate lithium nickel metal oxide material with a defined crystallite size. Such materials find utility as cathode materials for secondary lithium-ion batteries. The process comprises a first calcination step which comprises heating at a temperature of between about 460° C. and about 540° C. for a period of between three and ten hours, and a subsequent second calcination step which comprises heating to a temperature greater than about 600° C. for a period of between 30 mins and 4 hours.
1 . A process for producing a lithium nickel metal oxide material having a composition according to Formula 1:
Li a Ni x CO y A z C 2+b Formula 1
in which:
A is one or more of Al, V, Ti, B, Zr, Cu, Sn, Cr, Fe, Ga, Si, Zn, Mg, Sr, Mn, and Ca;
0.8≤a≤1.2
0.7≤x<1
0<y≤0.3
0≤z≤0.2
−0.2≤b≤0.2
x+y+z=1
the process comprising the steps of:
(i) mixing a nickel metal hydroxide precursor with a lithium-containing compound; and
(ii) calcining the mixture to form the lithium nickel metal oxide material; wherein the calcination comprises a first calcination step which comprises heating at a temperature of between about 460 DC and about 540° C. for a period of between three and ten hours, and a subsequent second calcination step which comprises heating to a temperature greater than about 600° C. for a od of between 30 mins and 4 hours.
2 . The process according to claim 1 , wherein A is one or more of Al, V, Ti, B, Zr, Cu, Sn, Cr, Fe, Ga, Si, Zn, Mg, Sr, and Ca.
3 . The process according to claim 1 , wherein A is Al and/or Mg.
4 . The process according to claim 1 , wherein 0.8≤x<0.95 and 0<y≤0.2.
5 . The process according to claim 1 , wherein the lithium-containing compound is lithium hydroxide.
6 . The process according to claim 1 , wherein the second calcination step is at a temperature greater than about 650° C.
7 . The process according to claim 1 , wherein the second calcination step is at a temperature between 600° C. and 800° C.
8 . The process according to claim 1 , wherein the second calcination step is carried out for a period of 1 to 4 hours.
9 . The process according to claim 1 , wherein the process further comprises the step of modifying the surface of the lithium nickel metal oxide material.
10 . The process according to claim 1 , wherein the process further comprises the step of milling the lithium nickel metal oxide material.
11 . The process according to claim 1 , further comprising the step of forming an electrode comprising the lithium nickel metal oxide material.
12 . The process according to claim 11 , further comprising the step of constructing a battery or electrochemical cell including an electrode comprising the lithium nickel metal oxide material.
13 . A particulate lithium nickel metal oxide material having a composition according to Formula 2:
Li a1 Ni x1 Co y1 A z1 O 2+b1 Formula 2
in which:
A is one or more of V, Ti, B, Zr, Cu, Sn, Cr, Ga, Si, Mg, Sr and Ca;
0.8≤a1≤1.2
0.7≤x1<1
0<y1≤0.3
0<z1≤0.2
−0.2≤b1≤0.2
x1+y1+z1=1
wherein the particulate lithium nickel metal oxide has a crystallite size in the range of an including 90 to 200 nm.
14 . The particulate lithium nickel metal oxide material according to claim 13 , wherein A is Mg and optionally one or more of V, Ti, B, Zr, Cu, Sn, Cr, Ga, Si, Sr and Ca.
15 . The particulate lithium nickel metal oxide material according to claim 13 , wherein A is Mg.
16 . The particulate lithium nickel metal oxide material according to claim 13 , wherein 0.8≤x1<1, 0<y1<0.2, and 0<z1<0.2.
17 . The particulate lithium nickel metal oxide material according to claim 13 , wherein 0.85≤x1<1, 0<y1<0.15, and 0<z1<0.15.
18 . The particulate lithium nickel metal oxide material according to claim 13 wherein the crystallite size is 90 to 160 nm, or 90 to 120 nm.
19 . An electrode comprising a particulate lithium nickel metal oxide according to Formula 2 or a particulate lithium nickel metal oxide obtainable by a process according to Process 1, wherein
Process 1 comprises the steps of:
(i) mixing a nickel metal hydroxide precursor with a lithium-containing compound; and
(ii) calcining the mixture to form the lithium nickel metal oxide material; wherein the calcination comprises a first calcination step which comprises heating at a temperature of between about 460° C. and about 540° C. for a period of between three and ten hours and a subsequent second calcination step which comprises heating to a temperature greater than about 600° C. for a period of between 30 mins and 4 hours so as to give rise to a particulate lithium nickel metal oxide having the formula Li a Ni x CO y A z C 2+b ,
in which:
A is one or more of Al, V, Ti, B, Zr, Cu, Sn, Cr, Fe, Ga, Si, Zn, Mg, Sr, Mn, and Ca;
0.8≤a≤1.2
0.7≤x<1
0<y≤0.3
0≤z≤0.2
−0.2≤b≤0.2
x+y+z=1; and
Formula 2 is
Li a1 Ni x1 Co y1 A z1 O 2+b1
in which:
A is one or more of V, Ti, B, Zr, Cu, Sn, Cr, Ga, Si, Mg, Sr and Ca;
0.8≤a1≤1.2
0.7≤x1<1
0<y1≤0.3
0<z1≤0.2
−0.2≤b1≤0.2
x1+y1+z1=1
wherein the particulate lithium nickel metal oxide has a crystallite size in the range of an including 90 to 200 nm.
20 . An electrochemical cell comprising an electrode according to claim 19 .