POSITIVE ACTIVE MATERIAL, METHOD OF PREPARING THE SAME, AND LITHIUM SECONDARY BATTERY USING THE SAME
Provided are a positive active material including a spinel lithium manganese oxide surface-coated with one or more types of nanoparticles selected from olivine-type lithium metal phosphate and metal oxide, a method of preparing the same and a lithium secondary battery using the same. The positive active material provides a lithium secondary battery having improved high-temperature cycle life characteristic and capacity per weight.
1 . A positive active material comprising a spinel lithium manganese oxide surface-coated with one or more types of nanoparticles selected from olivine-type lithium metal phosphate and metal oxide.
2 . The positive active material of claim 1 , wherein the spinel lithium manganese oxide is represented by Formula (1):
LiM x Mn 2-x O 4 (1)
wherein M is at least one selected from the group consisting of Ni, Zr, Co, Mg, Mo, Al, Ti, Cr, Gd and Ag, and 0≦x<1.
3 . The positive active material of claim 1 , wherein the spinel lithium manganese oxide is represented by Formula (2):
LiM x Mn 2-x O 4 — z F z (2)
wherein M is at least one selected from the group consisting of Ni, Zr, Co, Mg, Mo, Al, Ti, Cr, Gd and Ag, 0≦x<1, and 0<z<1.
4 . The positive active material of claim 1 , wherein the olivine-type lithium metal phosphate is represented by Formula (3):
LiM' (1-x) A x PO 4 (3)
wherein M′ and A are different from each other, M′ is at least one of Fe and Mn, A is at least one selected from the group consisting of Mn, Ni, Zr, Co, Mg, Mo, Al, Ag, Y and Nb, and 0≦x<1.
5 . The positive active material of claim 1 , wherein the metal oxide is an oxide including at least one selected from the group consisting of Fe, Mg, Ca, Zn, Sn, Sr, Pb, Cd, Ba, Be, Zr and Al.
6 . The positive active material of claim 1 , wherein the nanoparticles have a particle diameter of 100 nm or less.
7 . A method of preparing a positive active material, the method comprising:
surface-coating a spinel lithium manganese oxide by forming a coating layer by mixing the spinel lithium manganese oxide with one or more types of nanoparticles selected from olivine-type lithium metal phosphate and metal oxide.
8 . The method of claim 7 , wherein the spinel lithium manganese oxide is represented by Formula (1):
LiM x Mn 2-x O 4 (1)
wherein M is at least one selected from the group consisting of Ni, Zr, Co, Mg, Mo, Al, Ti, Cr, Gd and Ag, and 0≦x<1.
9 . The method of claim 7 , wherein the spinel lithium manganese oxide is represented by Formula (2):
LiM x Mn 2-x O 4 — z F z (2)
wherein M is at least one selected from the group consisting of Ni, Zr, Co, Mg, Mo, Al, Ti, Cr, Gd and Ag, 0≦x<1, and 0<z<1.
10 . The method of claim 7 , wherein the olivine-type lithium metal phosphate is represented by Formula (3):
LiM' (1-x) A x PO 4 (3)
wherein M′ and A are different from each other, M′ is at least one of Fe and Mn, A is one or more selected from the group consisting of Mn, Ni, Zr, Co, Mg, Mo, Al, Ag, Y and Nb, and 0≦x<1.
11 . The method of claim 7 , wherein the metal oxide is an oxide including at least one selected from the group consisting of Fe, Mg, Ca, Zn, Sn, Sr, Pb, Cd, Ba, Be, Zr and Al.
12 . The method of claim 7 , wherein a mixing ratio of the nanoparticles to the spinel lithium manganese oxide ranges from 1:100 to 1:25 by mass.
13 . A lithium secondary battery comprising the positive active material of claim 1 .