Inorganic-organic polymer nanocomposites and methods for their preparation and use
View Patent ↗Inorganic-organic polymer nanocomposites are provided. The inorganic-organic polymer nanocomposite includes a polymeric matrix and a plurality of metal nanoparticles embedded within the polymeric matrix. The plurality of metal nanoparticles are configured to provide cooling of the nanocomposite upon exposure to photoradiation.
1. An inorganic-organic polymer nanocomposite comprising:
a polymeric matrix; and
a plurality of metal nanoparticles embedded within the polymeric matrix, wherein the plurality of metal nanoparticles comprises a plurality of titanium tetra isopropoxide (Ti{OCH(CH 3 ) 2 } 4 ) nanoparticles, a plurality of tantalum penta-i-propoxide (C 15 H 3 O 5 Ta) nanoparticles, a plurality of magnesium isopropoxide (C 6 H 14 MgO 2 ) nanoparticles, or combinations thereof, and wherein the plurality of metal nanoparticles are configured to provide cooling of the nanocomposite upon exposure to photoradiation.
2. The inorganic-organic polymer nanocomposite of claim 1 , wherein the plurality of metal nanoparticles are present in the inorganic-organic polymer nanocomposite at a concentration of about 3 weight percentage (wt %) to about 7 wt %.
3. The inorganic-organic polymer nanocomposite of claim 1 , wherein the inorganic-organic polymer nanocomposite is configured for use as a cooling element in a packaging material, a refrigeration system, an air-cooling system, photo-cooling fabrics or combinations thereof.
4. The inorganic-organic polymer nanocomposite of claim 1 , wherein the inorganic-organic polymer nanocomposite comprises a single layer of polymeric matrix with metal nanoparticles embedded within the polymer matrix, and wherein the single layer is folded into two halves.
5. The inorganic-organic polymer nanocomposite of claim 1 , wherein the inorganic-organic polymer nanocomposite comprises a double layer of polymeric matrix with metal nanoparticles embedded within each of the layers, and wherein the double layer is folded into two halves.
6. The inorganic-organic polymer nanocomposite of claim 1 , wherein the inorganic-organic polymer nanocomposite comprises a plurality of layers of the polymeric matrix with metal nanoparticles embedded within each of the layers.
7. The inorganic-organic polymer nanocomposite of claim 1 , wherein the polymeric matrix comprises polyvinyl alcohol (PVA), polypyrrole (PPy), polypyridine, polypropylene, polyanhydrides, polyphosphazenes, polyphosphoesters, caprolactone polymers, chitosan, collagen, keratin, or combinations thereof.
8. The inorganic-organic polymer nanocomposite of claim 7 , wherein the polymeric matrix comprises a polyvinyl alcohol-chitosan film.
9. The inorganic-organic polymer nanocomposite of claim 8 , wherein the polyvinyl alcohol is present in the polymeric matrix at a concentration of about 3 weight percentage (wt %) to about 7 wt %.
10. The inorganic-organic polymer nanocomposite of claim 8 , wherein the chitosan is present in the polymeric matrix at a concentration of about 1.5 wt % to about 4.5 wt %.
11. An inorganic-organic polymer nanocomposite comprising:
a polyvinyl alcohol-chitosan film; and
a plurality of titanium tetra isopropoxide [Ti{OCH(CH 3 ) 2 } 4 ] nanoparticles embedded within the polyvinyl alcohol-chitosan film, wherein the plurality of titanium tetra isopropoxide nanoparticles are configured to provide cooling of the polyvinyl alcohol-chitosan film upon exposure to photoradiation having an illuminance of about 9000 Lux to about 30000 Lux.
12. The inorganic-organic polymer nanocomposite of claim 11 , wherein the polyvinyl alcohol is present at a concentration of about 3 weight percentage (wt %) to about 7 wt % and chitosan is present at a concentration of about 3 wt % to about 7 wt % in the polyvinyl alcohol-chitosan film.
13. The inorganic-organic polymer nanocomposite of claim 11 , wherein the plurality of titanium tetra isopropoxide nanoparticles are present in the inorganic-organic polymer nanocomposite at a concentration of about 3 wt % to about 7 wt %.
14. The inorganic-organic polymer nanocomposite of claim 11 , wherein the polyvinyl alcohol-chitosan film has a thickness of about 100 micrometers (μm) to about 1000 μm.
15. The inorganic-organic polymer nanocomposite of claim 11 , wherein the temperature of the nanocomposite of the inorganic-organic polymer nanocomposite is reduced by about 10° C. to about 25° C. within about 5 minutes to about 15 minutes of exposure to photoradiation.
16. A method of forming an inorganic-organic polymer nanocomposite, the method comprising:
mixing a polyvinyl alcohol (PVA) solution, a titanium tetra isopropoxide solution and chitosan to form a mixture; and
drying the mixture to form the inorganic-organic polymer nanocomposite.
17. The method of claim 16 , wherein mixing is carried out at a temperature of about 50° C. to about 70° C. and for a period of about 5 to 10 minutes and drying is carried out at about 45° C. to about 55° C.
18. The method of claim 16 , wherein the polyvinyl alcohol (PVA) solution, a titanium tetra isopropoxide solution and chitosan are mixed for a time period of about 5 minutes to about 10 minutes.
19. A method of cooling an inorganic-organic polymer nanocomposite, the method comprising:
providing an inorganic-organic polymer nanocomposite, wherein the inorganic-organic polymer nanocomposite comprises a polymeric matrix having a plurality of metal nanoparticles embedded therein, wherein the plurality of metal nanoparticles comprises a plurality of titanium tetra isopropoxide (Ti{OCH(CH 3 ) 2 } 4 ) nanoparticles, a plurality of tantalum penta-i-propoxide (C 15 H 3 O 5 Ta) nanoparticles, a plurality of magnesium isopropoxide (C 6 H 14 MgO 2 ) nanoparticles, or combinations thereof; and
exposing the inorganic-organic polymer nanocomposite to photoradiation to cool the inorganic-organic polymer nanocomposite.
20. The method of claim 19 , comprising applying a photoradiation of illuminance in a range of about 9000 Lux to 30000 Lux.
21. The method of claim 19 , wherein exposing the inorganic-organic polymer nanocomposite to photoradiation reduces the temperature of the inorganic-organic polymer nanocomposite by about 10° C. to about 25° C.
22. A system for regulating temperature of an object, the system comprising:
an inorganic-organic polymer nanocomposite placed proximate to an object, wherein the inorganic-organic polymer nanocomposite comprises a polymeric matrix with a plurality of metal nanoparticles embedded therein, wherein the plurality of metal nanoparticles comprises a plurality of titanium tetra isopropoxide (Ti{OCH(CH 3 ) 2 } 4 ) nanoparticles, a plurality of tantalum penta-i-propoxide (C 15 H 3 O 5 Ta) nanoparticles, a plurality of magnesium isopropoxide (C 6 H 14 MgO 2 )nanoparticles, or combinations thereof; and
a source configured to apply photoradiation to the inorganic-organic polymer nanocomposite to regulate the temperature of the inorganic-organic polymer nanocomposite.
23. The system of claim 22 , wherein the photoradiation comprises solar radiation.
24. The system of claim 22 , wherein the temperature of the inorganic-organic polymer nanocomposite is reduced to from about 10° C. to about 25° C.