Light-diffusing optical elements having cladding with scattering centers
Abstract
A light-diffusing optical element with efficient coupling to light sources with high numerical aperture. The light-diffusing optical element includes a higher index core surrounded by a lower index cladding. The cladding includes scattering centers that scatter evanescent light entering the cladding from the core. The scattered light exits the element to provide broad-area illumination along the element. Scattering centers include dopants, nanoparticles and/or internal voids. The core may also include scattering centers. The core is glass and the cladding may be glass or a polymer. The element features high numerical aperture and high scattering efficiency.
Claims
exact text as granted — not AI-modifiedWhat is claimed is:
1 . A light-diffusing element comprising:
a glass core, said glass core having a diameter greater than 65 μm; and a cladding surrounding said glass core, said cladding having a lower refractive index than said glass core, said cladding including first scattering centers, said first scattering centers having a cross-section with a dimension of at least 25 nm; wherein said element exhibits light scattering losses of at least 0.1 dB/m.
2 . The light-diffusing element of claim 1 , wherein said cladding comprises glass.
3 . The light-diffusing element of claim 2 , wherein said first scattering centers include internal voids, said internal voids being filled by a gas and having a cross-section with a dimension between 50 nm and 20 μm.
4 . The light-diffusing element of claim 1 , wherein said cladding comprises a polymer.
5 . The light-diffusing element of claim 4 , wherein said first scattering centers include internal voids, said internal voids being filled by a gas and having a cross-section with a dimension between 25 nm and 40 μm.
6 . The light-diffusing element of claim 5 , wherein said gas is selected from the group consisting of N 2 , air, and Ar.
7 . The light-diffusing element of claim 5 , wherein said internal voids have a cross-section with a dimension between 50 nm and 20 μm.
8 . The light-diffusing element of claim 5 , wherein the concentration of said internal voids in said cladding is at least 1.0% by volume.
9 . The light-diffusing element of claim 4 , wherein said first scattering centers include nanoparticles, said nanoparticles having a cross-section with a dimension of at least 25 nm.
10 . The light-diffusing element of claim 9 , wherein said cross-sectional dimension of said nanoparticles is less than 500 nm.
11 . The light-diffusing element of claim 10 , wherein said nanoparticles have a composition selected from the group consisting of Al 2 O 3 , SiO 2 , ZrO 2 , Y 3 Al 5 O 12 , and rare earth oxides.
12 . The light-diffusing element of claim 10 , wherein said nanoparticles are luminescent.
13 . The light-diffusing element of claim 10 , wherein said nanoparticles have a concentration in said cladding of at least 1.0% by volume.
14 . An illumination system comprising:
a light source optically coupled to a light-diffusing element, said light-diffusing element comprising:
a glass core, said glass core having a diameter greater than 65 μm; and
a cladding surrounding said glass core, said cladding having a lower refractive index than said glass core, said cladding including first scattering centers, said first scattering centers having a cross-section with a dimension of at least 25 nm;
wherein said element exhibits light scattering losses of at least 0.1 dB/m
15 . The illumination system of claim 14 , wherein said light source is an LED or a laser diode.
16 . A method for forming a light-diffusing element comprising:
forming a core, said core comprising glass; forming a cladding on said core, said cladding including first scattering centers, said first scattering centers having a cross-section with a dimension of at least 25 nm.
17 . The method of claim 16 , wherein said forming core includes drawing a glass preform.
18 . The method of claim 17 , wherein said forming cladding includes applying a curable composition to said core and curing said curable composition.
19 . The method of claim 18 , wherein said forming cladding includes curing said curable composition in the presence of a void-producing gas.
20 . The method of claim 18 , wherein said first scattering centers are nanoparticles, and wherein said curable composition further includes said nanoparticles.Join the waitlist — get patent alerts
Track US2019310415A1 — get alerts on status changes and closely related new filings.
We store only your email — no account needed. See our privacy policy.