Ceramic membrane water filtration
View Patent ↗A process for combined ozone degradation and filtration using a multi-layered, nanocrystalline, sintered ceramic, metal oxide catalyst and ceramic membrane filter is described. The process reduces fouling of the membrane and degrades ozone remaining in the water from ozonation of water to kill microorganisms.
1. A composite material for purification and filtration of water containing ozone and organic matter which comprises:
(a) a microporous to mesoporous inert ceramic filter with a surface; and
(b) multilayers of a nanocrystalline, sintered ceramic metal oxide catalyst membrane coating on the surface of the ceramic filter,
wherein the multilayers of the metal oxide catalyst coating are formed by applying a coating layer of metal oxide to the surface of the filter followed by a coating layer of phytic acid and repeated by alternating between the metal oxide layer and the phytic acid layer to form at least 20 layers of metal oxide, followed by sintering of the coating multilayers,
wherein the metal oxide catalyst coating in use degrades the ozone in the water into hydroxyl or other radicals in situ which react with the organic matter in the water resulting in the removal of the organic matter by the composite ceramic membrane during filtration, and
wherein the metal oxide is selected from the group consisting of titanium oxide and manganese oxide.
2. The composite material of claim 1 wherein the ceramic filter has been coated with a metal oxide or metal hydroxide, which has been dried to a metal oxide to provide the catalyst on the membrane.
3. The composite material of claim 1 wherein the membrane has a molecular weight cutoff for organic matter of 1,000 Da or more.
4. The composite material of claim 1 wherein the ceramic filter has a pore size of between about 0.001 and 50 micrometers.
5. A method for forming the composite of claim 1 which comprises:
(a) providing the microporous to mesoporous inert ceramic filter with the first surface;
(b) coating the ceramic filter or the surface with a first of the layers of the multi-layered, nanocrystalline, sintered, ceramic metal oxide catalyst by depositing on the filter surface a suspension of a metal oxide or metal hydroxide or ceramic oxide to form the catalyst followed by coating a layer of phytic acid on the layer of metal oxide, wherein the steps of applying metal oxide and phytic acid are repeated to form at least 20 layers of the metal oxide,
(c) sintering the at least 20 layers of the metal oxide and phytic acid layers to adhere the metal oxide or ceramic oxide to the filter surface as the catalyst.
6. The method of claim 5 wherein the coating is produced by heating a metal oxide as the precursor coating on the surface of the ceramic filter.
7. The method of claim 5 or 6 wherein the membrane is produced with a molecular weight cutoff for the organic matter of 1,000 Da or more.
8. The method of claim 5 or 6 wherein the ceramic filter has a pore size between about 0.001 and 50 micrometers.
9. The method of claim 5 wherein the repeating of step (c) is continued to produce up to 40 layers of the catalyst.
10. The composite of claim 1 , further comprising between 20 and 40 layers of the nanocrystalline, sintered ceramic metal oxide catalyst membrane coating.
11. The composite of claim 1 wherein the sintering of the layers is between a temperature of 500° C. and 900° C.
12. The composite of claim 1 , wherein the catalyst coating comprises 40 layers of the metal oxide and the sintering of the layers is at a temperature of 900° C.
13. The composite of claim 1 , wherein the membrane is adapted to allow for permeability at a molecular weight cutoff of 5 kilo-Daltons (kD) or more.