LAMINATED GLASS LUMINESCENT CONCENTRATOR
A laminated glass luminescent concentrator is provided which includes a solid medium having a plurality of fluorophores disposed therein. In some embodiments, the fluorophore is a low-toxicity quantum dot. In some embodiments, the fluorophore has significantly reduced self-absorption, which allows for unperturbed waveguiding of the photoluminescence over a long distance. Also disclosed are apparatuses for generating electricity from the laminated glass luminescent concentrator, and its combination with buildings and vehicles.
1 . A luminescent concentrator, comprising:
first and second sheets of glass; and
a luminescent layer disposed between, and in direct contact with, said first and second sheets of glass;
wherein said luminescent layer includes a solid medium containing a plurality of fluorophores.
2 . The luminescent concentrator of claim 1 , in combination with a photovoltaic device, which converts light into electricity.
3 . The luminescent concentrator of claim 1 , wherein said luminescent layer absorbs at least 1%, at least 5%, at least 10%, at least 20%, at least 50%, or at least 70% of incident visible light.
4 . The luminescent concentrator of claim 1 , wherein said fluorophores are quantum dots, and wherein said quantum dots do not contain any element selected from the group consisting of lead, cadmium, and mercury.
5 . The luminescent concentrator of claim 1 , wherein said fluorophores are quantum dots comprising a material selected from the group consisting of CuInS 2 , CuInSe 2 , ZnS, ZnSe, and alloys of the same.
6 . The luminescent concentrator of claim 1 , wherein said medium is selected from the group consisting of ethylene-vinyl acetate, polyvinyl butyral, thermoplastic polyurethane, poly(methyl methacrylate), poly (lauryl methacrylate), acrylate polymer, urethanes, vinyl polymer, cellulose, ionomer, ionoplast, cyclic olefin polymer, epoxies and silicone.
7 . The luminescent concentrator of claim 1 , wherein said medium contacts said first and second sheets of glass across first and second non-reflective interfaces.
8 . The luminescent concentrator of claim 1 , wherein said medium has an index of refraction that is within 30% of the index of refraction of said first and second sheets of glass.
9 . The luminescent concentrator of claim 1 , wherein said first and second sheets of glass contain less than 1% iron, less than 0.1% iron, or less than 0.01% iron.
10 . The luminescent concentrator of claim A 1 , wherein said medium was cured in between said sheets of glass.
11 . The luminescent concentrator of claim 1 , wherein said medium is coated onto one or both interior sides of the laminated glass prior to assembling the laminated glass.
12 . The luminescent concentrator of claim 1 , wherein said fluorophore has a quantum yield of at least 20%, at least 40%, at least 60%, at least 80%, at least 90%, or near 100%.
13 . The luminescent concentrator of claim 1 , wherein said fluorophore has an emission peak between 400 nm and 1300 nm.
14 . The luminescent concentrator of claim 1 , wherein said fluorophores have a self-absorption of less than 50% of their photoluminescence across the integrated spectrum over distances of at least 1 mm, at least 1 cm, at least 1 m, or at least 10 m.
15 . The luminescent concentrator of claim 1 , wherein said fluorophores have a Stokes shift of greater than 50 meV, greater than 100 meV, greater than 200 meV, or greater than 300 meV.
16 . The luminescent concentrator of claim 1 , wherein said medium was made by an extrusion process.
17 . The luminescent concentrator of claim 1 , wherein said first and second sheets of glass are curved.
18 . The luminescent concentrator of claim 1 , further comprising at least one coating on at least one of said sheets of glass that selectively reflects said photoluminescence.
19 . The luminescent concentrator of claim 1 , further comprising at least one coating on at least one of said sheets of glass that reduces the reflection of sunlight.
20 . The luminescent concentrator of claim 1 , further comprising at least one low-emissivity coating on at least one of said sheets of glass.
21 . The luminescent concentrator of claim 1 , in combination with an insulated glass unit.
22 . The luminescent concentrator of claim 1 , in combination with a third sheet of glass.
23 . The luminescent concentrator of claim 1 , in combination with a window frame.
24 . The luminescent concentrator of claim 1 , in combination with a vehicle.
25 . The luminescent concentrator of claim 1 , in combination with a building structure.
26 . A method for making a luminescent concentrator, comprising:
providing first and second sheets of glass; and
disposing a luminescent material between, and in direct contact with, said first and second sheets of glass, wherein said luminescent material comprises a medium containing a plurality of fluorophores.
27 . The method of claim 26 , wherein said luminescent material is a solid medium, and further comprising heating said first and second sheets of glass, thereby forming a laminated glass construct.
28 . The method of claim 26 , further comprising forming said luminescent material by an extrusion process.
29 . The method of claim 26 , further comprising using an autoclave to form a laminated glass construct.
30 . The method of claim 26 , wherein said luminescent material is curable, wherein the luminescent material is disposed between, and in direct contact with, said first and second sheets of glass while it is in an uncured state, and further comprising:
curing the uncured luminescent material.
31 . A method for making a luminescent concentrator, comprising:
providing first and second sheets of glass;
coating a first surface of the first sheet of glass with a luminescent material, thereby forming a first coated surface, wherein said luminescent material comprises a medium containing a plurality of fluorophores; and
assembling the first and second sheets of glass into a construct such that the first coated surface is facing the second sheet of glass.
32 . The method of claim 31 , further comprising:
coating a first surface of the second sheet of glass with the luminescent material, thereby forming a second coated surface; and
assembling the first and second sheets of glass into a construct such that the first and second coated surfaces are facing each other.