IP Library › Granted Patent US 12,265,243
Granted Patent B2
US 12,265,243 · App. 18/060,033 · Granted Apr 1, 2025

Curved reflective polarizer

Inventors: Robert M. Jennings (Shoreview, MN); Gregg A. Ambur (River Falls, WI); Jo A. Etter (Kirkland, WA); Benjamin G. Sonnek (Mahtomedi, MN); Zhisheng Yun (Sammamish, WA)
Assignee: 3M INNOVATIVE PROPERTIES COMPANY
G02B5/305B32B7/035G02B5/3041G02B6/2713G02B6/29361G02B27/14G02B27/141G02B27/142G02B17/0856G02B2027/013
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Quick Facts
Patent No.
US 12,265,243
App. No.
18/060,033
Granted
Apr 1, 2025
Kind
B2
Abstract

A curved reflective has at least one location having a radius of curvature in a range from about 6 mm to about 1000 mm. Each location on the reflective polarizer has a maximum reflectance greater than about 70% for a block polarization state, a maximum transmittance greater than about 70% for an orthogonal pass polarization state, and a minimum transmittance for the block polarization state. For a continuous first portion of the reflective polarizer extending between different first and second edges of the reflective polarizer and defining disjoint second and third portions of the reflective polarizer, the minimum transmittance of the reflective polarizer for the block polarization state is higher at each location in at least 70% of the first portion than at each location in at least 70% of the second portion and at each location in at least 70% of the third portion.

Claims (6)

1. A curved reflective polarizer comprising a plurality of alternating polymeric interference layers, each polymeric interference layer reflecting or transmitting light primarily by optical interference, at least one location on the curved reflective polarizer having a radius of curvature in a range from about 6 mm to about 1000 mm, for light having a predetermined wavelength and incident on the reflective polarizer along a direction parallel to an axis normal to and passing through the reflective polarizer at a center location, each location on the reflective polarizer having a maximum reflectance greater than about 70% for a block polarization state, a maximum transmittance greater than about 70% for an orthogonal pass polarization state, and a minimum transmittance for the block polarization state, wherein for a continuous first portion of the reflective polarizer extending between different first and second edges of the reflective polarizer, having a minimum width of at least 3% of a largest lateral dimension of the reflective polarizer, and defining disjoint second and third portions of the reflective polarizer, the minimum transmittance of the reflective polarizer for the block polarization state is higher at each location in at least 70% of the first portion than at each location in at least 70% of the second portion and at each location in at least 70% of the third portion.

2. The curved reflective polarizer of claim 1 , wherein the minimum transmittance of the reflective polarizer for the block polarization state is higher at each location in at least 80% of the first portion than at each location in at least 80% of the second portion and at each location in at least 80% of the third portion.

3. The curved reflective polarizer of claim 1 , wherein the minimum width of the first portion is at least 5% of the largest lateral dimension of the reflective polarizer.

4. The curved reflective polarizer of claim 1 , wherein the minimum width of the first portion is at least 8% of the largest lateral dimension of the reflective polarizer.

5. The curved reflective polarizer of claim 1 , wherein the minimum width of the first portion is no more than 80% of the largest lateral dimension of the reflective polarizer.

6. The curved reflective polarizer of claim 1 , wherein the minimum width of the first portion is no more than 50% of the largest lateral dimension of the reflective polarizer.

Continuity (4)
Continuation 16652626
Provisional Application 62577474 · Oct 26, 2017
Provisional Application 62570428 · Oct 10, 2017
Related Publication 20230089314A1 · Mar 23, 2023
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