ELECTRODE ACTIVE MATERIAL, METHOD FOR PREPARING THE SAME, ELECTRODE PLATE, AND BATTERY
Provided are an electrode active material, a method for preparing the electrode active material, an electrode plate, and a battery. The electrode active material includes carbon-coated metal oxide particles. The metal oxide particles satisfy a formula (2): A c M d O e (2), where element A is selected from one or more of alkali metal elements or alkaline earth metal elements; element M is selected from one or more of transition metal elements having a relative atomic mass smaller than 65; and c>0, d>0, and e>0.
1 . An electrode active material comprising carbon-coated metal oxide particles, the metal oxide particles satisfying a formula (2):
A c M d O e (2),
wherein:
element A is selected from one or more of alkali metal elements or alkaline earth metal elements;
element M is selected from one or more of transition metal elements having a relative atomic mass smaller than 65; and
c>0, d>0, and e>0.
2 . The electrode active material according to claim 1 , wherein the element A is selected from one or more of Li, Na, K, Mg, and Ca.
3 . The electrode active material according to claim 1 , wherein the metal oxide is selected from one or more of Li 2 M 1 O 2 , Li 2 M 2 O 3 , Li 3 M 3 O 4 , and Li 6 M 5 O 4 , wherein:
M 1 is selected from one or more of Ni, Co, Fe, Mn, and Cu;
M 2 is selected from one or more of Mn, Sn, Mo, Ru, and Ir;
M 3 comprises one or more of V, Nb, Cr, and Mo;
M 4 is selected from one or more of Fe, Cr, V, and Mo; and
M 5 comprises one or more of Co, V, Cr, and Mo.
4 . The electrode active material according to claim 1 , wherein the metal oxide is selected from one or more of Li 2 NiO 2 , Li 2 CuO 2 , Li 2 MnO 3 , Li 3 VO 4 , Li 5 FeO 4 , and Li 6 CoO 4 .
5 . The electrode active material according to claim 1 , wherein a molar stoichiometry ratio of the element A to the element M is c:d≥2, based on a total mole number of elements in the electrode active material.
6 . The electrode active material according to claim 1 , wherein a carbon content of the electrode active material ranges from 2 wt % to 20 wt %, and optionally from 5 wt % to 15 wt %, based on a total weight of the electrode active material.
7 . The electrode active material according to claim 1 , wherein:
the electrode active material comprises a doping element;
a ratio of a solubility product constant of a hydroxide of the doping element to a solubility product constant of a hydroxide of the element M ranges from 10 −5 to 10 5 ; and
the doping element is optionally one or more of Mg, Zn, Al, and Ti.
8 . The electrode active material according to claim 1 , wherein the carbon-coated metal oxide particles have a powder resistivity smaller than 1,000 Ω·cm, optionally smaller than 350 Ω·cm, optionally smaller than 10 Ω·cm, and further optionally smaller than 5 Ω·cm.
9 . The electrode active material according to claim 1 , wherein the carbon-coated metal oxide particles have a median particle size Dv50 ranging from 100 nm to 900 nm, and optionally from 300 nm to 700 nm.
10 . A method for preparing an electrode active material, comprising:
providing carbon-composite oxide particles, the oxide satisfying a formula (1):
M a O b (1),
wherein element M is selected from one or more of transition metal elements having a relative atomic mass smaller than 65, a>0, and b>0; and
performing a sintering processing on the carbon-composite metal oxide particles and an A source to obtain carbon-coated metal oxide particles, the metal oxide satisfying a formula (2):
A c M d O e (2),
wherein element A is selected from one or more of alkali metal elements or alkaline earth metal elements, element M is selected from one or more of transition metal elements having a relative atomic mass smaller than 65, c>0, d>0, and e>0.
11 . The method for preparing the electrode active material according to claim 10 , wherein the carbon-composite oxide particles have a powder resistivity smaller than 100 Ω·cm, and optionally smaller than 10 Ω·cm.
12 . The method for preparing the electrode active material according to claim 10 , wherein the carbon-composite oxide particles have a median particle size Dv50 ranging from 10 nm to 200 nm, and optionally from 20 nm to 100 nm.
13 . The method for preparing the electrode active material according to claim 10 , wherein a carbon content in the carbon-composite oxide particles ranges from 10 wt % to 40 wt %, and optionally from 20 wt % to 30 wt %, based on a total weight of the carbon-composite oxide particles.
14 . The method for preparing the electrode active material according to claim 10 , wherein:
a temperature of the sintering processing ranges from 500° C. to 700° C., and optionally from 550° C. to 650° C.; and/or
a duration of the sintering processing ranges from 4 hours to 20 hours, and optionally from 8 hours to 12 hours.
15 . The method for preparing the electrode active material according to claim 10 , wherein the A source is selected from one or more of an oxide, salt and hydroxide of an alkali metal or alkaline earth metal.
16 . The method for preparing the electrode active material according to claim 10 , wherein:
the A source is selected from one or more of lithium hydroxide, lithium carbonate, lithium oxide, lithium oxalate, and lithium acetate; and
a molar ratio of lithium element in the A source to the element M in the carbon-composite oxide particles ranges from 5.5 to 1.
17 . The method for preparing the electrode active material according to claim 10 , wherein the carbon-composite oxide particles are prepared by a liquid phase precipitation method.
18 . An electrode plate comprising:
a collector; and
an electrode active material layer disposed on at least one surface of the collector, the electrode active material layer comprising the electrode active material according to claim 1 .
19 . A battery comprising the electrode active material according to claim 1 .
20 . A battery comprising the electrode plate according to claim 18 .