Multi-layer composite structure containing pre-lithiated metal oxide and method for preparing the same
A multi-layer composite structure containing a pre-lithiated metal oxide includes a negative electrode particle, a first coating layer disposed on the negative electrode particle and containing a conductive carbon material, and a second coating layer disposed on the first coating layer and containing the pre-lithiated metal oxide formed through a lithiation reaction.
1 . A method for preparing a core/multi-layer shell composite structure for a lithium secondary battery, the method comprising:
a first step of mixing negative electrode particles with a buffer solution containing dopamine to prepare a first particle mixture with a first layer of a polydopamine coating layer on the negative electrode particles as a core;
a second step of dispersing the first particle mixture in a metal precursor aqueous solution to prepare a second particle mixture with a second layer of a metal oxide coating layer comprising a pre-lithiated metal oxide formed through a lithiation reaction on the first layer of the polydopamine coating layer; and
a third step of pre-lithiating the second particle mixture by mixing the second particle mixture with a lithium precursor and then heat-treating the second particle mixture,
wherein the negative electrode particles are at least one selected from a group consisting of silicon, silicon oxide, silicon carbide, silicon metal alloy, and combinations of silicon, silicon oxide, silicon carbide, and silicon metal alloy, and
the pre-lithiated metal oxide is selected from a group consisting of a lithium aluminum oxide (LiAl 2 O 3 ), a lithium magnesium oxide (LiMgO), and a lithium zinc oxide (LiZnO).
2 . The method of claim 1 , wherein the first step includes:
a step of stirring the negative electrode particles and dopamine hydrochloride in distilled water to form a stirred mixture; and
a step of polymerizing the dopamine on the negative electrode particles by adding a tris-HCl buffer solution to the stirred mixture.
3 . The method of claim 2 , wherein the second step includes:
a step of preparing the metal precursor aqueous solution;
a step of dispersing and stirring the first particle mixture in the prepared metal precursor aqueous solution; and
a step of performing a wet synthesis treatment including hydrothermal synthesis, solvothermal synthesis, and sol-gel synthesis on the stirred aqueous solution.
4 . The method of claim 3 , wherein, in the third step, through the heat treatment, the polydopamine coating layer is carbonized to form a conductive carbon material, and the metal oxide coating layer forms a pre-lithiated metal oxide as a chemical bonding reaction with the lithium precursor is induced.
5 . The method of claim 4 , wherein the metal precursor aqueous solution contains a metal precursor, distilled water, and urea,
wherein the metal precursor is at least one precursor compound for a metal material selected from a group consisting of aluminum, titanium, and manganese,
wherein the precursor compound is selected from a group consisting of a salt, an organic-inorganic compound, and an oxide.
6 . The method of claim 5 , wherein the sol-gel synthesis is performed by heating the stirred aqueous solution at a temperature in a range from 70 to 90° C. for 4 hours, and then, increasing the heating temperature to 120° C. to completely evaporate a solvent.
7 . The method of claim 6 , wherein the lithium precursor is one material selected from a group consisting of lithium acetate (C 2 H 3 LiO 2 ), lithium hydroxide (LiOH), lithium nitrate (LiNO 3 ), and lithium chloride (LiCl).