Nanoporous separators for batteries and related manufacturing methods
Provided is a lithium battery, wherein the battery comprises an anode, a cathode, wherein the cathode comprises one or more transition metals, an electrolyte, and a porous separator interposed between the cathode and anode, wherein the separator comprises an anionic compound. Also provided are methods of manufacturing such batteries.
1. A lithium battery comprising:
an anode,
a cathode, wherein the cathode comprises one or more transition metals,
an electrolyte, and
a porous separator interposed between the cathode and anode, wherein the porous separator comprises boehmite and an anionic compound comprising sulfonate groups,
wherein the anionic compound is an anthraquinone.
2. The battery of claim 1 , wherein the anode comprises lithium metal.
3. The battery of claim 1 , wherein the cathode comprises one or more transition metals selected from the group consisting of manganese, nickel and cobalt.
4. The battery of claim 1 , wherein the porous separator comprises a reinforcement area along an edge of the porous separator and wherein the reinforcement area comprises a polymer.
5. The battery of claim 4 , wherein the reinforcement area comprises a polymer impregnated in the pores of the porous separator.
6. The battery of claim 1 , wherein the anionic compound comprises two or more sulfonate groups.
7. The battery of claim 6 , wherein a cation of the anionic compound comprises a lithium ion.
8. The battery of claim 1 , wherein the anionic compound comprises greater than about 0.1 weight percent of the weight of the porous separator.
9. The battery of claim 1 , wherein the anionic compound is a photo sensitizer.
10. The battery f claim 9 , wherein the photosensitizer is an oxygen scavenger.
11. The battery of claim 9 , wherein the separator comprises polymer formed by the absorption of photons by the photosensitizer.
12. The battery of claim 1 , wherein the anionic compound is an oxidizer of lithium metal.
13. The battery of claim 1 , wherein the porous separator has an average pore diameter of less than about 100 nm.
14. The battery of claim 1 , wherein the porous separator is a scavenger of HF in the electrolyte.
15. The battery of claim 1 , wherein the porous separator inhibits the diffusion of transition metal cations through the separator.
16. The battery of claim 1 , wherein the cathode and the anode comprise electrode layers and one or more of the electrode layers are coated on the separator.
17. The battery of claim 1 , wherein the suifonate groups are complexed to the boehmite.