IP Library › Granted Patent US 11,591,478
Granted Patent B2
US 11,591,478 · App. 17/824,627 · Granted Feb 28, 2023

Silicon material and method of manufacture

Inventors: Robert C. Ionescu (San Jose, CA); Chueh Liu (San Jose, CA)
Assignee: ionobell, Inc.
C09C3/006B02C17/1815B02C17/20B02C21/00B02C23/24C01B33/02C01B33/182C08K3/04C09C1/28C09C3/041C09C3/063C09D133/20B02C17/16C01P2004/30C01P2004/61C01P2004/62C01P2004/80C01P2006/12C01P2006/80C08K2201/005
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Quick Facts
Patent No.
US 11,591,478
App. No.
17/824,627
Granted
Feb 28, 2023
Kind
B2
Abstract

A silicon material can include a silicon aggregate comprising a plurality of porous silicon nanoparticles welded together. The silicon aggregate can optionally have a polyhedral morphology. A method can include: receiving a plurality of porous silicon nanoparticles and cold welding the plurality of porous silicon nanoparticles into an aggregated silicon particle.

Claims (32)

1. A silicon material comprising

a silicon aggregate comprising a plurality of porous silicon nanoparticles welded together, wherein the silicon aggregate comprises a substantially polyhedral morphology, wherein a characteristic size of the silicon aggregate is between about 1-10 μm, wherein the silicon aggregate comprises 1-10% by mass carbon, 1-5% by mass oxygen, and at least 50% by mass silicon.

2. The silicon material of claim 1 , wherein the oxygen is inhomogeneously distributed in the silicon aggregate.

3. The silicon material of claim 1 , wherein the silicon aggregate comprises graphitic and non-graphitic carbon, wherein the non- graphitic carbon is at most 10% of the carbon content by mass.

4. The silicon material of claim 1 , further comprising a carbonaceous coating disposed on the silicon aggregate.

5. The silicon material of claim 4 , wherein a silicon nanoparticle of the plurality of porous silicon nanoparticles comprises a surface area greater than about 200 m 2 /g, wherein the silicon aggregate comprises a surface area that is between about 10 and 20 m 2 /g, and the silicon aggregate coated with the carbonaceous coating comprises a surface area between about 5 and 10 m 2 /g.

6. The silicon material of claim 1 , wherein the porous silicon nanoparticles are manufactured from fumed silica.

7. The silicon material of claim 1 , wherein the porous silicon nanoparticles comprise a characteristic size between about 2 and 100 nm.

8. A method for manufacturing a silicon material comprising:

receiving a plurality of porous silicon nanoparticles with a characteristic size between about 2 and 100 nm;

cold welding the plurality of porous silicon nanoparticles into an aggregated silicon particle, wherein the aggregated silicon particle comprises a characteristic size between about 1 μm and 10 μm; and

contemporaneously with cold welding the plurality of porous silicon nanoparticles, carbon coating the plurality of porous silicon nanoparticles by milling the plurality of porous silicon nanoparticles and a polymer.

9. The method of claim 8 , wherein cold welding the plurality of porous silicon nanoparticles comprises ball milling the plurality of porous silicon nanoparticles for between 10 minutes and 6 hours at a milling speed between 500 and 1500 rpm.

10. The method of claim 9 , wherein the plurality of porous silicon nanoparticles are ball milled in a cryogenic ball mill wherein walls of the cryogenic ball mill are cooled using liquid nitrogen.

11. The method of claim 9 , wherein a milling container comprises a zirconia jar and wherein a milling media comprises zirconia balls with a size between 1 mm and 10 mm, and wherein a weight ratio between the zirconia balls and the plurality of porous silicon nanoparticles is about 1:1.

12. The method of claim 9 , further comprising introducing oxygen at a flow rate between about 1 sscm and 1000 sscm concurrently with ball milling the plurality of porous silicon nanoparticles.

13. The method of claim 9 , wherein the plurality of porous silicon nanoparticles are continuously ball milled.

14. The method of claim 8 , wherein the polymer comprises polyacrylonitrile, wherein the method further comprises cyclizing the polyacrylonitrile by heating the polyacrylonitrile to an activation temperature.

15. The method of claim 8 , wherein carbon coating the plurality of porous silicon nanoparticles comprises:

dissolving the polymer in a solvent;

mixing the dissolved polymer with the plurality of porous silicon nanoparticles;

removing the solvent to prepare a dry mixture of the polymer and the plurality of porous silicon nanoparticles; and

milling the dry mixture.

16. The method of claim 8 , wherein the plurality of porous silicon nanoparticles are manufactured by reducing a fumed silica precursor in the presence of a metal reducing agent at a temperature between about 700° C. and 1000° C.

17. A method for manufacturing a silicon material comprising:

receiving a plurality of porous silicon nanoparticles with a characteristic size between about 2 and 100 nm, wherein the plurality of porous silicon nanoparticles are manufactured by reducing a fumed silica precursor in the presence of a metal reducing agent at a temperature between about 700° C. and 1000° C.; and

cold welding the plurality of porous silicon nanoparticles into an aggregated silicon particle, wherein the aggregated silicon particle comprises a characteristic size between about 1 μm and 10 μm.

18. The method of claim 17 , wherein cold welding the plurality of porous silicon nanoparticles comprises ball milling the plurality of porous silicon nanoparticles for between 10 minutes and 6 hours at a milling speed between 500 and 1500 rpm.

19. The method of claim 18 , wherein the plurality of porous silicon nanoparticles are ball milled in a cryogenic ball mill wherein walls of the cryogenic ball mill are cooled using liquid nitrogen.

20. The method of claim 18 , wherein a milling container comprises a zirconia jar and wherein a milling media comprises zirconia balls with a size between 1 mm and 10 mm, and wherein a weight ratio between the zirconia balls and the plurality of porous silicon nanoparticles is about 1:1.

21. The method of claim 18 , further comprising introducing oxygen at a flow rate between about 1 sscm and 1000 sscm concurrently with ball milling the plurality of porous silicon nanoparticles.

22. The method of claim 9 , wherein the plurality of porous silicon nanoparticles are continuously ball milled.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 3, 2022
From: IONESCU, ROBERT C.; LIU, CHUEH
To: IONOBELL, INC.
Reel/Frame 060094/0353 →
Continuity (3)
Provisional Application 63192688 · May 25, 2021
Provisional Application 63273032 · Oct 28, 2021
Related Publication 20220380223A1 · Dec 1, 2022
Cited By (1)
US 12,291,457