IP Library › Granted Patent US 12,494,478
Granted Patent B2
US 12,494,478 · App. 17/641,916 · Granted Dec 9, 2025

Electroactive materials for use in metal-ion batteries

Inventors: Charles A. Mason (Abingdon, GB); Richard Gregory Taylor (Penarth, GB); Joshua Whittam (Faringdon, GB); Limunga Silo Meoto (Abingdon, GB); Mauro Chiacchia (Abingdon, GB)
Assignee: Nexeon Limited
H01M4/364H01M4/134H01M4/1395H01M4/386H01M4/625H01M4/663H01M2004/021H01M2004/027
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Quick Facts
Patent No.
US 12,494,478
App. No.
17/641,916
Granted
Dec 9, 2025
Kind
B2
Abstract

This invention relates to particulate electroactive materials consisting of a plurality of composite particles, wherein the composite particles comprise: (a) a porous conductive particle framework including micropores and/or mesopores having a total volume of at least 0.4 to 2.2 cm 3 /g; (b) an electroactive material disposed within the porous conductive particle framework; and (c) a lithium-ion permeable filler penetrating the pores of the porous conductive particle framework and disposed intermediate the nanoscale silicon domains and the exterior of the composite particles.

Claims (26)

1 . A particulate material consisting of a plurality of composite particles, wherein the composite particles comprise:

(a) a conductive porous particle framework comprising micropores and mesopores, wherein the micropores and mesopores have a total pore volume in the range from 0.4 to 1.2 cm 3 /g;

(b) a plurality of nanoscale electroactive material domains disposed within the porous conductive particle framework;

(c) a lithium-ion permeable filler penetrating the pores of the porous conductive particle framework and disposed intermediate the nanoscale electroactive material domains and the exterior of the composite particles;

wherein the volumetric ratio of micropores to mesopores in the conductive porous particle framework is from 85:15 to 55:45;

wherein the electroactive material is silicon; and

wherein the weight ratio of silicon to the conductive porous particle framework in the composite particles is in the range from [0.5×P 1 to 1.3×P 1 ]:1, wherein P 1 is a dimensionless quantity having the magnitude of the total pore volume of micropores and mesopores in the conductive porous particle framework when expressed in cm 3 /g.

2 . A particulate material according to claim 1 , wherein the total volume of micropores and mesopores in the conductive porous particle framework is at least 0.6 cm 3 /g.

3 . A particulate material according to claim 1 , wherein the conductive porous particle framework has a PD 90 pore diameter of no more than 10 nm.

4 . A particulate material according to claim 1 , wherein the conductive porous particle framework is a conductive porous carbon particle framework.

5 . A particulate material according to claim 1 , wherein the conductive porous particle framework has a BET surface area of at least 750 m 2 /g and no more than 4,000 m 2 /g.

6 . A particulate material according to claim 1 , wherein the composite particles comprise at least 80 wt % in total of silicon and carbon.

7 . A particulate material according to claim 1 , wherein at least 90 wt % of the electroactive material mass in the composite particles is located within the internal pore volume of the conductive porous particle framework.

8 . A particulate material according to claim 1 , wherein the lithium-ion permeable filler material is a conductive pyrolytic carbon material.

9 . A particulate material according to claim 1 , wherein the lithium-ion permeable filler material is a lithium-ion permeable solid electrolyte.

10 . A particulate material according to claim 9 , wherein the lithium-ion permeable solid electrolyte also forms a coating over at least a portion of the outer surface of the conductive porous particle framework.

11 . A particulate material according to claim 1 , wherein the composite particles have a D 50 particle diameter in the range from 1 to 30 μm.

12 . A particulate material according to claim 1 , wherein the composite particles have a BET surface area of no more than 200 m 2 /g and at least 0.1 m 2 /g.

13 . A particulate material according to claim 1 , wherein the volume of micropores and mesopores of the composite particles, as measured by nitrogen gas adsorption, is no more than (0.15×P 1 ) cm 3 /g.

14 . A particulate material according to claim 1 , having specific capacity on lithiation of 1200 to 2340 mAh/g.

15 . A composition comprising a particulate material according to claim 1 and at least one other component selected from: (i) a binder; (ii) a conductive additive; and (iii) an additional particulate electroactive material.

16 . An electrode comprising a particulate material according to claim 1 in electrical contact with a current collector.

17 . A rechargeable metal-ion battery comprising:

(i) an anode, wherein the anode comprises an electrode as described in claim 16 ;

(ii) a cathode comprising a cathode active material capable of releasing and reabsorbing metal ions; and

(iii) an electrolyte between the anode and the cathode.

Assignments (1)
NUNC PRO TUNC ASSIGNMENT Recorded Sep 6, 2023
From: MASON, CHARLES A.; WHITTAM, JOSHUA; MEOTO, SILO; CHIACCHIA, MAURO; TAYLOR, RICHARD GREGORY
To: NEXEON LIMITED
Reel/Frame 064810/0171 →
Priority Claims (3)
GB 1913069 · Sep 10, 2019 · national
GB 2000833 · Jan 21, 2020 · national
GB 2003864 · Mar 17, 2020 · national
Continuity (1)
Related Publication 20220336790A1 · Oct 20, 2022
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