Light-Guide Optical Element Employing Polarized Internal Reflectors
Abstract
A light-guide optical element (LOE) includes a transparent substrate having two parallel major external surfaces for guiding light within the substrate by total internal reflection (TIR). Mutually parallel internal surfaces within the LOE are provided with a structural polarizer which is transparent to light polarized parallel to a primary polarization transmission axis, and is partially or fully reflective to light polarized perpendicular to the primary polarization transmission axis. By suitable orientation of the polarization axis of successive internal surfaces together with the polarization mixing properties of TIR and/or use of birefringent materials, it is possible to achieve the desired proportion of coupling-out of the image illumination from each successive facet.
Claims
exact text as granted — not AI-modified1 . A light-guide optical element comprising:
(a) a transparent substrate having at least two parallel major external surfaces for guiding light within the substrate by internal reflection at said external surfaces; and (b) a plurality of mutually parallel internal surfaces deployed within said substrate non-parallel to said major external surfaces, at least part of each of said internal surfaces comprising a structural polarizer having a primary polarization transmission axis, said structural polarizer being substantially transparent to light polarized parallel to said primary polarization transmission axis and being at least partially reflective to light polarized perpendicular to said primary polarization transmission axis,
wherein a principal axis of each of said internal surfaces is defined as a direction parallel to said major external surfaces, and wherein said primary polarization transmission axes for successive surfaces of said plurality of internal surfaces are inclined relative to said principal axis at a sequence of angles that vary non-monotonically.
2 . The light-guide optical element of claim 1 , wherein said sequence of angles oscillates within a range including either zero or 90 degrees.
3 . The light-guide optical element of claim 1 , wherein said sequence of angles intermittently takes a value of zero or intermittently takes a value of 90 degrees.
4 . The light-guide optical element of claim 1 , within a range of ±45 degrees from zero or within a range of ±45 degrees from 90 degrees.
5 . The light-guide optical element of claim 1 , wherein said structural polarizer is substantially fully reflective to light polarized perpendicular to said primary polarization transmission axis.
6 . The light-guide optical element of claim 1 , wherein at least part of said substrate is formed from a material exhibiting birefringence.
7 . The light-guide optical element of claim 1 , wherein said substrate has a thickness measured between said major external surfaces, and wherein said structural polarizer extends across less than an entirety of said thickness.
8 . The light-guide optical element of claim 7 , wherein said structural polarizer spans less than half of said thickness.
9 . The light-guide optical element of claim 7 , wherein said structural polarizer does not extend to either of said major external surfaces.
10 . The light-guide optical element of claim 1 , further comprising an additional set of mutually parallel internal surfaces deployed within said substrate non-parallel to said major external surfaces, at least part of each surface of said additional set of internal surfaces comprising a multilayer partially-reflective dielectric coating.
11 . The light-guide optical element of claim 10 , wherein said additional set of internal surfaces are parallel to said plurality of internal surfaces.
12 . The light-guide optical element of claim 11 , wherein said additional set of internal surfaces are interleaved with said plurality of internal surfaces.
13 . The light-guide optical element of claim 11 , wherein surfaces of said additional set of internal surfaces are coplanar with surfaces of said plurality of internal surfaces.
14 . The light-guide optical element of claim 10 , wherein a thickness of said substrate is subdivided into a first layer and a second layer, and wherein said plurality of internal surfaces are located within said first layer and said additional set of internal surfaces are located within said second layer.
15 . A display for providing an image to an eye of an observer comprising:
(a) the light-guide optical element of claim 1 ; and (b) an image projector generating a collimated image, said image projector being optically coupled to said light-guide optical element so as to introduce the collimated image into the light-guide optical element so as to propagate by internal reflection within the light-guide optical element,
wherein said plurality of internal surfaces are oriented to couple out part of the collimated image towards the eye of the observer.
16 . The display of claim 15 , further comprising an absorbent polarizer deployed on a side of said substrate further from the observer, said absorbent polarizer having an axis of polarization aligned with an average direction of said primary polarization transmission axes of said structural polarizers.Join the waitlist — get patent alerts
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