Optical filters from nanocomposites
View Patent ↗Methods for preparing optical filter nanocomposites from nanopowders. Both low-loaded and highly-loaded nanocomposites are included. Nanoscale coated and un-coated fillers may be used. Nanocomposite filter layers may be prepared on substrates. Gradient nanocomposites for filters are discussed.
1. A method for preparing an optical component comprising:
providing nanofillers with domain size less than 100 nanometers comprising particles with an aspect ratio greater than 1 and less than or equal to 3;
providing a matrix;
wherein the nanofillers comprise a particle surface comprising a coating of a phase that is compatible with the matrix or a substrate surface wherein a precursor has been reacted with the particle surface of the nanofillers;
mixing the nanofillers with the matrix below a nanofillers loading of 80% by volume;
using the mixture of nanofillers and the matrix to produce an optical nanocomposite; and
wherein the optical nanocomposite refracts, filters, transmits or reflects a wavelength of light by an amount that differs by more than 20% as compared with an optical composite material of a similar composition with filler particles having a domain size of at least one micron.
2. The method of claim 1 wherein the mixing includes adding a secondary species material selected from the group consisting of: dispersants, binders, modifiers, and detergents.
3. The method of claim 1 wherein the mixing is heterogeneous thereby producing a gradient optical nanocomposite.
4. The method of claim 1 wherein the optical nanocomposite is deposited on a surface.
5. The method of claim 1 further comprising a step wherein the nanofillers are suspended in water or a solvent prior to the mixing step.
6. The method of claim 1 wherein the nanofillers comprise a composition comprising at least three elements.
7. The method of claim 1 wherein the nanofillers are powders.
8. The method of claim 1 wherein the nanofillers comprise one or more elements selected from the group consisting: of aluminum, barium, bismuth, cadmium, calcium, cerium, cesium, cobalt, copper, europium, gallium, gold, indium, iron, lanthanum, lithium, magnesium, manganese, molybdenum, neodymium, nickel, niobium, palladium, platinum, potassium, praseodymium, scandium, silver, sodium, strontium, tantalum, tin, titanium, tungsten, vanadium, ytterbium, yttrium, zinc, and zirconium.
9. The method of claim 1 wherein the nanofillers comprise one or more elements selected from the group consisting of: antimony, boron, bromine, carbon, chlorine, fluorine, germanium, hydrogen, iodine, nitrogen, oxygen, phosphorus, selenium, silicon, sulfur, and tellurium.
10. The method of claim 1 wherein the nanofillers are coated with a polymer.
11. A product comprising the optical component prepared using the method of claim 1 .
12. A device prepared using the method of claim 1 .
13. The method of claim 1 wherein the matrix comprises an organic composition.
14. A method for preparing an optical filter comprising:
providing surface treated nanofillers with domain size less than 100 nanometers comprising particles with an aspect ratio greater than 1 and less than or equal to 3;
providing a polymer;
mixing the nanofillers with the polymer below a nanofillers loading of 80% by volume;
using the mixture of nanofillers and the matrix to produce an optical nanocomposite;
wherein the optical nanocomposite transmits a wavelength of light by an amount that differs by more than 20% as compared with an optical composite material of a similar composition with filler particles having a domain size of at least one micron; and
wherein the optical nanocomposite filters specific wavelengths of light.
15. The method of claim 14 wherein the mixing includes adding a secondary species material selected from the group consisting of dispersants, binders, modifiers, detergents, and additives.
16. The method of claim 14 wherein the mixing is heterogeneous thereby producing a gradient nanocomposite.
17. The method of claim 14 wherein the nanocomposite is deposited on a substrate.
18. The method of claim 14 wherein the nanofillers are powders.
19. The method of claim 14 wherein the nanofillers are chemically reduced at temperatures at or below 250 C prior to the mixing step.
20. The method of claim 14 wherein the nanofillers comprise whiskers.
21. The method of claim 14 wherein the nanofillers comprise two or more elements selected from the group consisting of: aluminum, barium, bismuth, cadmium, calcium, cerium, cesium, cobalt, copper, europium, gallium, gold, indium, iron, lanthanum, lithium, magnesium, manganese, molybdenum, neodymium, nickel, niobium, palladium, platinum, potassium, praseodymium, scandium, silver, sodium, strontium, tantalum, tin, titanium, tungsten, vanadium, ytterbium, yttrium, zinc, and zirconium.
22. The method of claim 14 wherein the nanofillers comprise one or more elements selected from the group consisting of: antimony, boron, bromine, carbon, chlorine, fluorine, germanium, hydrogen, iodine, nitrogen, oxygen, phosphorus, selenium, silicon, sulfur, and tellurium.
23. The method of claim 14 wherein the nanofillers comprise three or more elements selected from the group consisting of: aluminum, barium, bismuth, cadmium, calcium, cerium, cesium, cobalt, copper, europium, gallium, gold, indium, iron, lanthanum, lithium, magnesium, manganese, molybdenum, neodymium, nickel, niobium, palladium, platinum, potassium, praseodymium, scandium, silver, sodium, strontium, tantalum, tin, titanium, tungsten, vanadium, ytterbium, yttrium, zinc, and zirconium.
24. A product comprising the optical filter prepared using the method of claim 14 wherein the nanofillers comprise a particle surface comprising a coating of a phase that is compatible with the polymer wherein a precursor has been reacted with the particle surface of the nanofillers.
25. A device prepared using the method of claim 14 wherein the nanofillers comprise a particle surface comprising a coating of a phase that is compatible with the polymer wherein a precursor has been reacted with the particle surface of the nanofillers.
26. The method of claim 14 further comprising a step wherein the nanofillers are suspended in water or a solvent prior to the mixing step.