Solid-state batteries, separators, electrodes, and methods of fabrication
Solid-state batteries, battery components, and related processes for their production are provided. The battery electrodes or separators contain sintered electrochemically active material, inorganic solid particulate electrolyte having large particle size, and low melting point solid inorganic electrolyte which acts as a binder and/or a sintering aid in the electrode.
1. An amorphous or glass-ceramic lithium ion conductive inorganic electrolyte comprising lithium carbonate doped with lithium orthoborate and at least one dopant selected from the group consisting of lithium fluoride, silicon dioxide, fluorine, sulfur, silicon, and germanium.
2. An amorphous or glass-ceramic lithium ion conductive inorganic electrolyte comprising lithium orthoborate doped with lithium carbonate and at least one dopant selected from the group consisting of lithium fluoride, silicon dioxide, fluorine, sulfur, silicon, and germanium.
3. An amorphous or glass-ceramic lithium ion conductive inorganic electrolyte comprising lithium carbonate doped with lithium orthoborate, wherein the electrolyte has chemical formula Li 9.3 C 3 BO 12.5 .
4. A method of making an amorphous or glass-ceramic lithium ion conductive inorganic electrolyte comprising a doped metal oxide containing at least one of carbon and boron, the method comprising forming a coating layer of a powder of the doped metal oxide on a substrate, heating the coated substrate to liquefy the powder, and quenching the coated substrate at a temperature below the melting point of the powder to form the amorphous or glass-ceramic electrolyte, wherein the doped metal oxide is lithium carbonate doped with lithium orthoborate and at least one dopant selected from the group consisting of lithium fluoride, silicon dioxide, fluorine, sulfur, silicon, and germanium, or is lithium orthoborate doped with lithium carbonate and at least one dopant selected from the group consisting of lithium fluoride, silicon dioxide, fluorine, sulfur, silicon, and germanium.
5. The method according to claim 4 , wherein the amorphous or glass-ceramic electrolyte has a conductivity at least about three times higher than the conductivity of the powder of the doped metal oxide.
6. The method according to claim 4 , wherein the amorphous or glass-ceramic electrolyte has a conductivity at least about five times higher than the conductivity of the powder of the doped metal oxide.
7. The method according to claim 4 , wherein forming the coating layer comprises preparing a slurry comprising the powder of the doped metal oxide and a solvent, depositing the slurry onto the substrate, and evaporating the solvent to form the coating layer of the powder on the substrate.
8. An amorphous or glass-ceramic lithium ion conductive inorganic electrolyte comprising a doped metal oxide containing at least one of boron and carbon, wherein the electrolyte is Li 2 CO 3 —Li 3 BO 3 doped with Li 2 SO 4 .
9. An amorphous or glass-ceramic lithium ion conductive inorganic electrolyte comprising a doped metal oxide containing at least one of boron and carbon, wherein the electrolyte is low melting and has general formula N v N′ w N″ x N′″ y N″″ z wherein
N represents at least one element selected from Group IA of the Periodic Table,
N′ represents at least one element selected from Group IVA of the Periodic Table,
N″ represents at least one element from Group IIIA of the Periodic Table,
N′″ represents at least one element from Group VIA of the Periodic Table, and
N″″ represents at least one dopant selected from Groups IA-VIIA of the Periodic Table and transitional metals, and
wherein v, w, x, y, and z are each zero or a positive number, including various combinations of integers and fractions or decimals.