Engineered solid electrolyte interfaces on anode materials
Herein are described materials for a lithium ion anode, processes of manufacturing the lithium ion anode, and batteries that include the lithium ion anode. The materials can include a metal or metal alloy nanoparticulate carrying a solid electrolyte interface. The process can include admixing a lithium accepting material that is a metal or metal alloy nanoparticulate carrying a solid electrolyte interface with a conductive carbon; and then preparing a film of the admixture on an electrical substrate. The battery is assembled from the as manufactured lithium ion anode.
1. A material for use in a lithium ion anode consisting of: a plurality of silicon nanoparticulates, each nanoparticulate individually carrying and entirely coated with a
solid electrolyte interface,
wherein the silicon nanoparticulates include silicon or a silicon alloy, and wherein the silicon alloy and/or the silicon and the solid electrolyte interface are free of silicon oxygen bonds,
wherein the nanoparticulate carries a monolayer of the solid electrolyte interface, and wherein the solid electrolyte interface is composed of a plurality of bi-radical groups bound to a surface of the nanoparticulate by adjacent methenyl groups, a vinylene carbonate, or a benzotriazole.
2. The material of claim 1 , wherein the solid electrolyte interface has an ionic conductivity of at least 10-6S·cm−1.
3. The material of claim 1 , wherein the nanoparticulate includes the silicon alloy, and wherein the silicon alloy includes an alloying element selected from titanium, iron, chromium, magnesium, manganese, cobalt, nickel, and gallium.
4. The material of claim 1 , wherein the nanoparticulate has a cross-sectional diameter between about 25 nm and 1 μm.
5. A process for manufacturing a lithium ion anode comprising:
admixing the material of claim 1 with a conductive carbon;
preparing a film of the admixture on an electrical substrate.
6. The process of claim 5 , wherein the material of claim 1 is admixed with the conductive carbon in a ratio from 20:1 to 1:2.
7. The process of claim 6 , wherein the ratio is from 10:1 to 1:1.
8. The process of claim 5 , wherein the film comprises about 1 to about 50 wt. % of the conductive carbon, about 1 to about 95 wt. % of the material of claim 1 , and about 1 to about 10 wt. % of a binder.
9. The process of claim 5 , wherein the material of claim 1 and conductive carbon are further admixed with graphite.
10. The process of claim 5 , wherein the film comprises about 10-90 wt. % material of claim 1 , about 1-40 wt. % conductive carbon, about 10-80 wt. % graphite, and about 1-10 wt. % binder.
11. The process of claim 5 , wherein the film includes about 70-80 wt. % graphite and about 1-10 wt. % conductive carbon.
12. A lithium ion anode comprising:
a conductive substrate carrying an admixture of a material, the material consisting of:
a plurality of silicon nanoparticulates, each nanoparticulate individually carrying and entirely coated with a solid electrolyte interface, wherein the silicon nanoparticulates include silicon or a silicon alloy, and wherein the silicon alloy and/or the silicon and the solid electrolyte interface are free of silicon oxygen bonds,
a conductive powder, and,
graphite and/or a binder,
wherein the lithium ion anode has a structure of a solid composite,
wherein the nanoparticulate carries a monolayer of the solid electrolyte interface,
and wherein the solid electrolyte interface is composed of a plurality of bi-radical groups bound to a surface of the nanoparticulate by adjacent m ethenyl groups, a vinylene carbonate, or a benzotriazole.
13. The material of claim 1 , wherein the solid electrolyte interface is the product of radical polymerization.
14. The material of claim 13 , wherein the solid electrolyte interface is crosslinked.