Compact Polarization-Based Collimators with High Contrast
High-performance polarization-based triple-pass lenses require precise management of polarization over a range of incidence angles and wavelengths. These lenses have the potential to provide high optical power in a compact arrangement, as needed for (e.g.) wide field-of-view near-eye immersive display applications. Accordingly, disclosed herein is a wide-angle polarization-based triple-pass lens that includes an input polarizer producing a first transmitted linear polarization; a first retarder-stack for converting from linear-polarization to circular-polarization; a curved partial-reflector; a second retarder-stack for converting from circular-polarization to linear-polarization; a reflective linear-polarizer; and a geometric-compensator (GC) between the input polarizer and the first retarder-stack, the second quarter-wave retarder and the reflective linear-polarizer, or both. The GC reduces the first-pass transmission of the lens for rays incident off-normal.
1 . A wide-angle polarization-based triple-pass lens, comprising:
an input polarizer producing a first transmitted linear polarization;
a first retarder-stack for converting from linear-polarization to circular-polarization;
a curved partial-reflector;
a second retarder-stack for converting from circular-polarization to linear-polarization;
a reflective linear-polarizer; and
a geometric-compensator (GC) between the input polarizer and the first retarder-stack, the second quarter-wave retarder and the reflective linear-polarizer, or both;
wherein, the GC reduces the first-pass transmission of the lens for rays incident off-normal.
2 . The lens of claim 1 , wherein the absorptive linear-polarizer is o-type in transmission, the reflective-polarizer is o-type in reflection, and the absorption-axis is crossed with the reflection-axis.
3 . The lens of claim 1 , wherein the geometric-compensator is comprised of a positive A-plate with 70-130 nm of phase-difference, and a positive C-plate with 70-130 nm of phase-difference.
4 . The lens of claim 1 , wherein the second retarder stack has a reverse-order-reflection-about-zero relationship with the first retarder stack.
5 . The lens of claim 4 , further including a positive C-plate between the first retarder-stack and the partial-reflector, the partial-reflector and the second retarder-stack, or both, wherein the positive C-plate retardation is selected to minimize the transmission of first-pass light for rays incident off-normal.
6 . The lens of claim 5 , further including a diattenuation-compensator between the first retarder-stack and the partial-reflector, the partial-reflector and the second retarder-stack, or both, wherein the absorption of the diattenuation-compensator is selected to minimize the transmission of first-pass light for rays incident off-normal.
7 . A wide-angle magnified imaging system, comprising:
a display device;
an input polarizer producing a first transmitted linear polarization;
a first retarder-stack for converting from linear-polarization to circular-polarization;
a curved partial-reflector;
a second retarder-stack for converting from circular-polarization to linear-polarization;
a reflective linear-polarizer; and
a geometric-compensator (GC) between the input polarizer and the first retarder-stack, the second quarter-wave retarder and the reflective linear-polarizer, or both;
wherein, the GC reduces the first-pass transmission of the lens for rays incident off-normal.
8 . The imaging system of claim 7 , wherein the absorptive linear-polarizer is o-type in transmission, the reflective-polarizer is o-type in reflection, and the absorption-axis is crossed with the reflection-axis.
9 . The imaging system of claim 7 , wherein the geometric-compensator is comprised of a positive A-plate with 70-130 nm of phase-difference, and a positive C-plate with 70-130 nm of phase-difference.
10 . The imaging system of claim 7 , wherein the second retarder stack has a reverse-order-reflection-about-zero relationship with the first retarder stack.
11 . The imaging system of claim 10 , further including a positive C-plate between the first retarder-stack and the partial-reflector, the partial-reflector and the second retarder-stack, or both, wherein the positive C-plate retardation is selected to minimize the transmission of first-pass light for rays incident off-normal.
12 . The imaging system of claim 11 , further including a diattenuation-compensator between the first retarder-stack and the partial-reflector, the partial-reflector and the second retarder-stack, or both, wherein the absorption of the diattenuation-compensator is selected to minimize the transmission of first-pass light for rays incident off-normal.
13 . A wide-angle magnified imaging system with reduced ghosting, comprising:
a display device;
an input absorptive polarizer affixed to the display device producing a first transmitted linear polarization;
a curved reflective linear-polarizer physically separated from the input polarizer;
a first retarder-stack for converting from linear-polarization to circular-polarization;
a partial-reflector;
a second retarder-stack for converting from circular-polarization to linear-polarization; and
an analyzing absorptive linear polarizer with absorption-axis crossed with the input polarizer absorption-axis.
14 . The wide-angle magnified imaging system of claim 13 , wherein the curved reflective-polarizer, the first retarder-stack, the partial reflector, the second retarder-stack, and the analyzing polarizer are all optically coupled to minimize reflections.
15 . The wide-angle magnified imaging system of claim 14 , wherein the curved reflective polarizer forms an input convex surface and the concave surface is filled with an isotropic index-matching dielectric, forming a planar surface for coupling to the input retarder-stack.
16 . The wide-angle magnified imaging system of claim 13 , wherein the partial-reflector is planar.
17 . The wide-angle magnified imaging system of claim 13 , wherein the curved reflective polarizer is physically separated from the first retarder-stack, and the first-retarder stack, the partial reflector, the second retarder-stack, and the analyzing polarizer are all optically coupled.
18 . The wide-angle magnified imaging system of claim 17 , wherein the output surface of the curved reflective polarizer and the input surface of the first quarter-wave retarder have an anti-reflection coating.
19 . The wide-angle magnified imaging system of claim 13 , further comprising a geometric-compensator (GC) between the reflective polarizer and the first retarder stack, the second retarder-stack and the analyzing absorptive polarizer, or both;
wherein the GC reduces the first-pass transmission of the lens for rays incident off-normal.
20 . The wide-angle magnified imaging system of claim 19 , wherein the geometric-compensator is comprised of a positive A-plate with 70-130 nm of phase-difference, and a positive C-plate with 70-130 nm of phase-difference.
21 . The wide-angle magnified imaging system of claim 19 , wherein the second retarder stack has a reverse-order-reflection-about-zero relationship with the first retarder stack.
22 . The wide-angle magnified imaging system of claim 21 , further including a positive C-plate between the first retarder-stack and the partial-reflector, the partial-reflector and the second retarder-stack, or both, wherein the positive C-plate retardation is selected to minimize the transmission of first-pass light for rays incident off-normal.
23 . The wide-angle magnified imaging system of claim 21 , further including a diattenuation-compensator between the first retarder-stack and the partial-reflector, the partial-reflector and the second retarder-stack, or both, wherein the absorption of the diattenuation-compensator is selected to minimize the transmission of first-pass light for rays incident off-normal.