Method for manufacturing porous silicon and secondary battery anode active material containing same
View Patent ↗A porous silicon manufacturing method according to the present invention comprises the steps of: pretreating a silicon precursor and a heat dispersant; and conducting a thermal reduction reaction between the heat dispersant-pretreated silicon precursor and a metal reducing agent by using a rotary reaction chamber. When porous silicon manufactured by the manufacturing method is contained in a secondary battery anode active material and used in secondary batteries, the batteries exhibit high capacity and long lifespan characteristics. The present invention relates to a method for manufacturing porous silicon and a method for manufacturing a secondary battery anode active material containing the porous silicon manufactured thereby, with the aim of solving the problems with silicon materials under development for anode active materials for lithium secondary batteries, including excessive volume expansion during charge/discharge and resultant electrode fracture and lifespan shortening.
1 . A method for manufacturing porous silicon, the method comprising the steps of:
(1) conducting a primary heat treatment on a first mixture containing a silicon precursor and a heat dispersant;
(2) feeding a metal reducing agent to the first mixture and stirring to form a second mixture;
(3) subjecting the second mixture to a secondary heat treatment in a sealed rotary reaction chamber that is rotated at a speed of 1 to 100 revolutions per minute under a non-oxidative atmosphere, the rotation being configured to maintain a substantially uniform Mg:SiO 2 molar ratio and to suppress formation of Mg 2 Si and Mg 2 SiO 4 during reduction; and
(4) washing the secondarily heat-treated second mixture with a solvent to recover porous silicon particles having a conversion rate to MgO of at least 70% and a porous-silicon yield of at least 60%.
2 . The method of claim 1 , wherein the silicon precursor is selected from silicon dioxide (SiO 2 ), silicon oxide (SiOx, 0<x<2), silica gel, sand, glass, quartz, zeolite, and fumed silica, each having a particle size of 20 nm to 10 μm.
3 . The method of claim 1 , wherein the heat dispersant is at least one of sodium chloride (NaCl), potassium chloride (KCl), calcium chloride (CaCl 2 )), and magnesium chloride (MgCl 2 ).
4 . The method of claim 3 , wherein the heat dispersant is contained at an amount of 100 to 1,200 parts by weight, based on 100 parts by weight of the silicon precursor.
5 . The method of claim 1 , wherein the primary heat treatment is conducted at a temperature of 550 to 800° C. for 1 to 5 hours.
6 . The method of claim 1 , wherein the metal reducing agent is selected from sodium (Na), magnesium (Mg), aluminum (Al), and a combination thereof.
7 . The method of claim 6 , wherein the metal reducing agent is mixed in an amount of 50 to 200 parts by weight per 100 parts by weight of the silicon precursor.
8 . The method of claim 1 , wherein the secondary heat treatment is carried out at a temperature of 300 to 1,000° C. for 1 to 24 hours under a pressure of 10 −3 to 5 bar in a non-oxidative atmosphere.
9 . The method of claim 1 , wherein the step (4) is carried out by the sub-steps of:
(4-1) washing the secondarily heat-treated reaction product with distilled water to remove the heat dispersant;
(4-2) washing the heat dispersant-removed reaction product with a first acid solution to remove the oxidized metal reducing agent and recover the porous silicon; and
(4-3) etching the recovered porous silicon with a second acid solution to remove impurities therefrom.
10 . The method of claim 1 , wherein the porous silicon particles recovered in step (4) have a specific surface area of 20 to 200 m 2 /g and a total pore volume of 0.1 cm 3 /g to 1.0 cm 3 /g as measured by a BET method; and individual primary silicon particles as constituents in the porous silicon particles have an average size of 10 to 50 nm.