Cathode active material for lithium secondary battery
Provided are a method of preparing a cathode active material including coating a surface of a lithium transition metal oxide with a lithium boron oxide by dry mixing the lithium transition metal oxide and a boron-containing compound and performing a heat treatment, and a cathode active material prepared thereby. A method of preparing a cathode active material according to an embodiment of the present invention may easily transform lithium impurities present in a lithium transition metal oxide into a structurally stable lithium boron oxide by performing a heat treatment near the melting point of a boron-containing compound. Also, a coating layer may be formed in which the lithium boron oxide is uniformly coated in an amount proportional to the used amount of the boron-containing compound even at a low heat treatment temperature.
1. A cathode active material comprising:
a core-shell structure having a core and a coating layer disposed on the surface of the core,
wherein the core consists of a lithium transition metal oxide and optionally lithium impurities which result from the synthesis of the lithium transition metal oxide; and
wherein the coating layer having an inner surface and an outer surface separated by a thickness, the inner surface facing the core,
wherein the coating layer consists of a lithium boron oxide and the lithium impurities, the lithium impurities present in the coating layer only at the inner surface,
wherein the lithium boron oxide is LiBO 2 , Li 2 B 4 O 7 , or a mixture thereof,
wherein the lithium impurities include at least one of Li 2 CO 3 and LiOH,
wherein the lithium impurities are present in an amount of less than 0.3 wt % based on a total weight of the cathode active material, and
wherein the lithium transition metal oxide is represented by Chemical Formula 3, and, in Chemical Formula 3, w has a concentration gradient gradually decreasing from the surface of the lithium transition metal oxide to inside thereof:
Li 1+a [Ni x Mn y Co z B w M v ]O 2−c A c <Chemical Formula 3>
where M is any one selected from the group consisting of aluminum (Al), zirconium (Zr), zinc (Zn), titanium (Ti), magnesium (Mg), gallium (Ga), and indium (In), or two or more elements thereof; A is at least one selected from the group consisting of phosphorus (P), fluorine (F), sulfur (S), and nitrogen (N), and 0≤x≤1.0, 0≤y≤0.6, 0≤z≤0.6, 0≤v≤0.1, 0≤a<0.3, 0≤c≤0.2, a+x+y+z+v=1, and 0<w≤0.1.
2. The cathode active material of claim 1 , wherein elemental boron (B) in an amount of 100 parts per million (ppm) to 2,000 ppm, based on a total mass of the cathode active material.
3. The cathode active material of claim 1 , wherein the coating layer comprises elemental B in an amount of 250 parts per million (ppm) to 1,100 ppm, based on a total mass of the cathode active material.
4. The cathode active material of claim 1 , wherein a thickness of the coating layer is in a range of 10 nm to 1,000 nm.
5. A cathode comprising the cathode active material of claim 1 .
6. A lithium secondary battery comprising the cathode of claim 5 .
7. The cathode active material of claim 1 , wherein the lithium impurities are present in an amount ranging from 0.1 wt % to less than 0.3 wt % based on the total weight of the cathode active material.