Graphene Coated Anode Particles for a Lithium Ion Secondary Battery
Various solid state battery arrangements are presented herein. Solid state batteries are detailed that have a cathode may be from cathode active material particles coated in graphene. Additionally or alternatively, an anode may be made from anode active material particles coated in graphene. Use of graphene-coated particles may allow for a solid electrolyte layer thickness to be decreased or for the solid electrolyte layer to be eliminated in its entirety.
1 . A solid state battery, comprising:
a cathode layer; and
an anode layer comprising active material anode particles, wherein individual active material anode particles are coated in graphene.
2 . The solid state battery of claim 1 , wherein the active material anode particles are silicon.
3 . The solid state battery of claim 1 , wherein the active material anode particles are silicon oxide.
4 . The solid state battery of claim 1 , further comprising a solid electrolyte layer located between the cathode layer and the anode layer.
5 . The solid state battery of claim 4 , wherein the solid electrolyte layer is between 10 μm and 30 μm in thickness.
6 . The solid state battery of claim 1 , wherein the anode layer is in direct contact with the cathode layer.
7 . The solid state battery of claim 1 , wherein the active material anode particles coated in graphene are less than 26 micrometers in diameter.
8 . The solid state battery of claim 1 , wherein the cathode layer comprises active material cathode particles that are individually coated in graphene.
9 . The solid state battery of claim 8 , wherein the active material cathode particles coated in graphene are less than 26 micrometers in diameter.
10 . The solid state battery of claim 9 , wherein an active material of the active material cathode particles is lithium nickel cobalt aluminum oxide.
11 . A method for creating a solid state battery, the method comprising:
performing a process to coat active material anode particles with graphene;
creating an anode layer using the active material anode particles coated with graphene; and
creating the solid state battery using the created anode layer and a cathode layer.
12 . The method for creating the solid state battery of claim 11 , wherein the active material anode particles are silicon or silicon oxide.
13 . The method for creating the solid state battery of claim 11 , further comprising:
creating a solid electrolyte layer, wherein:
creating the solid state battery using the created anode layer and the cathode layer further comprises placing the solid electrolyte layer between the anode layer and the cathode layer.
14 . The method for creating the solid state battery of claim 11 , wherein performing the process to coat the active material anode particles with graphene comprises:
performing a mechanical nano-fusion process to coat the active material anode particles with graphene.
15 . The method for creating the solid state battery of claim 11 , wherein performing the process to coat the active material anode particles with graphene comprises:
performing a spray coating process to coat the active material anode particles with graphene.
16 . The method for creating the solid state battery of claim 11 , further comprising:
performing a second process to coat active material cathode particles with graphene, wherein individual cathode active material particles are coated with graphene; and
creating the cathode layer using active material cathode particles coated with graphene.
17 . The method for creating the solid state battery of claim 16 , wherein creating the cathode layer using the active material cathode particles coated in graphene further comprises adding solid electrolyte particles to the cathode layer.
18 . The method for creating the solid state battery of claim 17 , wherein adding solid electrolyte particles to the cathode comprises:
soaking the cathode layer comprising the active material cathode particles coated in graphene with a solid electrolyte suspended in a liquid; and
drying the cathode layer to remove the liquid from the cathode layer.
19 . The method for creating the solid state battery of claim 18 , wherein creating the cathode layer using the active material cathode particles coated in graphene further comprises adding carbon fiber strands to the cathode layer.
20 . The method for creating the solid state battery of claim 11 , wherein the active material anode particles coated in graphene are less than 26 micrometers in diameter.