Iron doped titanium dioxide nanocrystals and their use as photocatalysts
A method of making a visible light photo-catalyst is provided, the method comprising doping a titanium dioxide nanocrystal with iron to provide an iron-doped nanocrystal, washing the iron-doped nanocrystal with an acid to produce an acid-washed iron-doped titanium dioxide nanocrystal and rinsing the acid-washed iron-doped titanium dioxide nanocrystal to remove a residual of the acid, thereby providing a visible light photo-catalyst. The photo-catalyst is also provided, as are methods of using the photo-catalyst in remediation.
1. A method of synthesizing a visible light photo-catalyst, the method comprising doping a titanium dioxide nanocrystal with iron to provide an iron-doped titanium dioxide nanocrystal, drying the iron-doped titanium dioxide nanocrystal to provide a dried iron-doped titanium dioxide nanocrystal, washing the dried iron-doped titanium dioxide nanocrystal with an acid having a pH of no higher than about 4 to produce an acid-washed iron-doped titanium dioxide nanocrystal and rinsing the acid-washed iron-doped titanium dioxide nanocrystal to remove a residual of the acid, thereby providing the visible light photo-catalyst.
2. The method of claim 1 , wherein the rinsing is a water rinse.
3. The method of claim 2 , wherein the acid has a pH of about 2.5 to about 3.5.
4. A visible light photo-catalyst for remediation of aqueous solutions comprising one or more of organic matter, at least one microbe, at least one organic compound and at least one organometallic compound, the visible light photo-catalyst synthesized by the method of claim 1 .
5. A method of remediating an aqueous solution, the aqueous solution including one or more of at least one organic compound, ammonia, organic matter, microbial contamination or at least one organometallic compound, the method comprising: exposing the aqueous solution to a photo-catalyst, the photo-catalyst comprising substantially iron oxide free, iron doped titanium dioxide; and exposing the photo-catalyst to light, thereby remediating the aqueous solution and producing an at least one remediation product.
6. The method of claim 5 , wherein the light is visible light.
7. The method of claim 6 , wherein exposing comprises mixing the photo-catalyst in the aqueous solution.
8. The method of claim 6 , wherein exposing comprises flowing the aqueous solution over the photo-catalyst which is immobilized.
9. The method of claim 8 , wherein exposing comprises flowing the aqueous solution through a tube in which the photo-catalyst is immobilized.
10. The method of claim 6 , wherein exposing comprises retaining the aqueous solution in a containment structure upon which the photo-catalyst is immobilized.
11. The method of claim 6 , wherein the aqueous solution includes the microbial contamination, and remediating reduces or eliminates microbial growth.
12. The method of claim 11 , wherein the microbial contamination is a gram-positive or a gram-negative bacterial contamination.
13. A combination for use in remediation of aqueous solutions, the combination comprising: a visible light photo-catalyst, the photo-catalyst comprising acid washed iron-doped titanium dioxide which has a reduced content of iron oxide; and a substrate, the photo-catalyst attached to the substrate.
14. The combination of claim 13 , wherein the substrate is glass.
15. The combination of claim 14 , wherein the glass is a glass tube.
16. The combination of claim 15 , further comprising a light source positioned to irradiate the photo-catalyst.
17. The combination of claim 13 , wherein the substrate is aluminum.
18. The combination of claim 17 , wherein the aluminum at least partially coats an inner surface of a waste water pipe.
19. The combination of claim 13 , wherein the substrate is an inner surface of a containment structure.
20. The combination of claim 13 further comprising paint.