US20220317354A1 - Hollow triple-pass optical elements - Google Patents

Hollow triple-pass optical elements Download PDF

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US20220317354A1
US20220317354A1 US17/653,655 US202217653655A US2022317354A1 US 20220317354 A1 US20220317354 A1 US 20220317354A1 US 202217653655 A US202217653655 A US 202217653655A US 2022317354 A1 US2022317354 A1 US 2022317354A1
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optical element
optical
layer
optical system
polarizer
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US17/653,655
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Gary D. Sharp
Anthony D. McGettigan
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Gary Sharp Innovations Inc
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    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B5/00Optical elements other than lenses
    • G02B5/30Polarising elements
    • G02B5/3025Polarisers, i.e. arrangements capable of producing a definite output polarisation state from an unpolarised input state
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/28Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00 for polarising
    • G02B27/283Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00 for polarising used for beam splitting or combining
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/09Beam shaping, e.g. changing the cross-sectional area, not otherwise provided for
    • G02B27/0938Using specific optical elements
    • G02B27/0977Reflective elements
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/28Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00 for polarising
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B3/00Simple or compound lenses
    • GPHYSICS
    • G02OPTICS
    • G02CSPECTACLES; SUNGLASSES OR GOGGLES INSOFAR AS THEY HAVE THE SAME FEATURES AS SPECTACLES; CONTACT LENSES
    • G02C7/00Optical parts
    • G02C7/02Lenses; Lens systems ; Methods of designing lenses
    • G02C7/08Auxiliary lenses; Arrangements for varying focal length
    • G02C7/088Lens systems mounted to spectacles
    • GPHYSICS
    • G02OPTICS
    • G02CSPECTACLES; SUNGLASSES OR GOGGLES INSOFAR AS THEY HAVE THE SAME FEATURES AS SPECTACLES; CONTACT LENSES
    • G02C7/00Optical parts
    • G02C7/12Polarisers

Definitions

  • Eyewear lenses with significant refractive power are typically heavy and uncomfortable to wear over long periods of time.
  • High refractive index polymers can mitigate this, but not completely solve the issue when high power is needed.
  • the prior art discloses arrangements that utilize polarization to create a triple-pass compact magnifier, or a wide-angle collimator (WAC).
  • the triple-pass occurs in a cavity formed between an input partial reflector and an output reflective polarizer.
  • the reflective polarizer acts as a mirror.
  • Light returned by the reflective polarizer is then converted to the orthogonal state-of-polarization (SOP) after reflection from the partial reflector.
  • SOP state-of-polarization
  • QW quarter-wave
  • Converted light is then transmitted by the reflective polarizer.
  • an input circular polarizer can be used external to the cavity.
  • Optical power can be derived via reflection from the partial reflector, reflection from the reflective polarizer, or both.
  • an optical system that includes a first optical element through which light enters the optical system and a second optical element retained against the first optical element. At least one of the first optical element and the second optical element are non-planar. A hollow cavity is formed between the first optical element and the second optical element. Each of the first optical element and the second optical element reflect light such that light passes at least three times through the hollow cavity before exiting the optical system via the second optical element.
  • the first optical element may include a quarter-wave retarder and a partial reflector.
  • the second optical element includes a quarter-wave retarder and a reflective polarizer.
  • the first optical element may also include a polarizer. At least one of the first optical element and the second optical element may be convex. At least one of the first optical element and the second optical element may be concave.
  • the system may further include a support substrate attached to at least one of the optical elements.
  • the support substrate may be an isotropic substrate.
  • the support substrate may be a resin.
  • the hollow cavity may be at least partially filled with an isotropic optical fluid.
  • the system may further include an exit polarizer adjacent the second optical element.
  • the second optical element may include a planar quarter-wave retarder and a non-planar reflective polarizer. The first optical element and the second optical element may be joined together along perimeters thereof.
  • an optical system that includes a first optical element through which light enters the optical system, the first optical element including a quarter-wave retarder and a partial reflector; and a second optical element held in a fixed position relative to the first optical element, with a hollow cavity formed between the first optical element and the second optical element, the second optical element including a quarter-wave retarder and a reflective polarizer. At least one of the first optical element and the second optical element are non-planar. Each of the first optical element and the second optical element reflect light such that light passes at least three times through the hollow cavity before exiting the optical system via the second optical element.
  • the first optical element may also include a polarizer.
  • an optical system that includes a first optical element through which light enters the optical system, the first optical element including a quarter-wave retarder and a partial reflector; and a second optical element through which light exits the optical system, the second optical element held in a fixed position relative to the first optical element, with a hollow cavity formed between the first optical element and the second optical element, the second optical element including a quarter-wave retarder and a reflective polarizer. At least one of the first optical element and the second optical element are non-planar. Each of the first optical element and the second optical element reflect light back into the hollow cavity at least one time.
  • the first optical element may also include a polarizer.
  • FIG. 1 shows a prior art wide-angle collimator.
  • FIG. 2 shows a triple-pass optical system as described herein.
  • FIG. 3 shows a sequence of manufacturing steps in which a triple-pass optical system may be manufactured.
  • FIGS. 4 a , 4 b , 4 c , and 4 d show different possible curvatures for the two layers of a triple-pass optical system.
  • FIG. 5 shows a bi-convex HTP lens with Layer 1 and Layer 2 sealed at the perimeter, where a plano QW2 is placed between the layers.
  • FIG. 6 shows a biconvex HTP lens filled with one of air, optical fluid, or grease.
  • FIG. 7 shows a pair of eyewear incorporating the hollow triple-pass lens of the invention.
  • FIG. 8 shows an array of hollow triple-pass lenses for focusing light or for collimating an array of light sources.
  • FIG. 1 shows a prior art WAC, consisting of a display with a circular polarized output, a pair of cemented singlets with a partially-reflective coating on one surface, a QW retarder, and a plano reflective (e.g., 3M DBEF) polarizer.
  • optical power is derived entirely from the reflection that occurs at the concave surface of the partial reflector.
  • the singlets are glass elements.
  • Typical displays do not have an intrinsic circularly-polarized output.
  • An LCD usually has a linearly-polarized output, where a QW retarder can be added to convert to a circularly-polarized state.
  • An organic light-emitting diode (OLED) display often has a circular polarizer (QW facing the display) for blocking (e.g., ambient) light incident on the output-surface.
  • QW is again required on the output side to convert to a circular SOP.
  • the input may be unpolarized.
  • the invention contemplates an arbitrary input polarization, or degree of polarization. This means that the function of the unit is incorporated into the first and second layers of the WAC.
  • Glass elements may be preferred in a WAC design due to the need for precise polarization management and optical quality. But this can produce structures that are heavy and, for example, uncomfortable to wear on the face. Polymers are lighter, but birefringence in polymers can damage the polarization management and introduce stray light and ghost images. In general, solid optical elements facilitate conventional lamination of films onto the plano surface, supporting the functional layers and ensuring robust performance. However, apart from acting as carrier substrates, these elements may serve no purpose, while adding weight and birefringence.
  • a hollow triple-pass (HTP) system that performs as a stand-alone unit; performing the desired optical function regardless of the input degree of polarization.
  • the HTP includes two functional layers (first and second optical elements) that are joined together to form an air-spaced optical cavity.
  • Layer 1 contains a partially reflective layer
  • Layer 2 contains a reflective polarizer.
  • Layers 1 and 2 may have a different radius of curvature, such that a prescribed optical power is achieved in triple-pass.
  • incoming light passes initially through Layer 1 and through the cavity where it impinges upon Layer 2. This is the first pass of the light through the cavity. The light is reflected from the reflective polarizer of Layer 2 back through the cavity where it impinges upon Layer 1.
  • FIG. 2 shows an example of an embodiment, where both Layer 1 and Layer 2 have compound curvature.
  • Layer 1 may be fabricated as a flat laminate, containing an input linear polarizer, a QW retarder (QW1) oriented at 45° to the absorption axis, a partial reflector, and possibly additional substrates for mechanical support.
  • Layer 2 may also be fabricated as a flat laminate, containing a QW retarder (QW2) oriented at ⁇ 45° a reflective polarizer (e.g., Asahi-Kasei wire grid polarizer (WGP)), oriented with reflection-axis crossed with the absorption axis of the input polarizer, and possibly additional substrates for mechanical support.
  • QW2 QW retarder
  • WGP Asahi-Kasei wire grid polarizer
  • the circularly polarized light impinges upon QW2 where it is converted to linearly polarized light of the proper orientation to pass through the wire grid polarizer and exit the optical system. That represents the third pass through QW3. Also, it can be seen that light is reflected once by the partial reflector and once by the reflective (wire grid) polarizer.
  • Circular parts can be die cut from the mother-sheet of each laminate and thermoformed to a desired radius of curvature.
  • the partial reflector must largely preserve the desired optical performance when subjected to the forming process.
  • PVD physical vapor deposited
  • the partial reflector can be omitted from the flat lamination, with the partial reflector coating applied to the inner surface after forming.
  • additional substrates are required to provide mechanical support, they can be integrated into the flat lamination of each layer, or they can be applied after forming. In any case, it may be preferred that support substrates be placed outside of the polarization-management structure, such that birefringence issues are mitigated.
  • a mechanical support substrate can be placed before (outside) the linear polarizer of Layer 1, such that the partial reflector forms an inner surface of the cavity.
  • a mechanical support substrate can be placed after (outside) the reflective polarizer of Layer 2, such that QW2 forms an inner surface of the cavity.
  • mechanical support substrates are required between the input polarizer and the reflective polarizer, they should be substantially isotropic.
  • triacetyl cellulose shows relatively little in-plane birefringence when thermoformed, though it does exhibit some negative c-plate retardation as-cast.
  • a c-plate is a uniaxial retarder with optic axis normal to the substrate.
  • isotropic substrates such as Z-TAC (by Fuji), which have substantially zero in-plane and thickness-direction retardation.
  • An example alternative is a high molecular weight (e.g.) polycarbonate resin, which is stretched to produce a few thousand nanometers of retardation along the axis of the adjacent polarizer. The stretching provides a well-defined optic axis, such that the forming process does little to rotate it and it is functionally isotropic.
  • the support substrate may be a material that tends to have low birefringence.
  • resins that are either intrinsically isotropic or can be annealed to mitigate birefringence may be preferred.
  • materials such as polyurethanes that can cross-link near room-temperature may show minimal retardation.
  • mechanical support substrates are placed outside of the path where polarization management is critical.
  • antireflective coatings can also be applied to all exposed surfaces to further mitigate the effects of Fresnel reflections. These coatings can be applied either before or after thermoforming.
  • first quarter-wave (QW1) and second quarter-wave (QW2) retarders need not be placed on opposing substrates (on opposed sides of the cavity).
  • QW1 and QW2 can both be laminated to the substrate containing the partial reflector, on opposite sides of the partial reflector.
  • pure circular polarization is output by QW1, with pure linear polarization output by QW2 in the forward-pass.
  • This may use a single or multi-layer achromatic retarder stack to convert from linear-to-circular and from circular-to-linear over the spectral range of use (e.g. 400-700 nm).
  • These polarization conversions can be accomplished via (e.g.) achromatic polarization basis-vector transformations as described in co-pending U.S. Provisional Patent Application No. 62/637,832, entitled “Retarder Stack Pairs for Polarization Basis Vector Transformations,” which is incorporated by reference.
  • An exemplary combination of polarization transformations may further accomplish this over the full range of incidence angles.
  • Mechanical support substrates can also be applied after forming, either before or after joining the layers. They can be applied in a single step after forming to also serve the role of perimeter joining. That is, the external (e.g. injection molded) material can encapsulate Layer 1 and Layer 2.
  • An example of this type of mechanical support uses insert molding as shown in FIG. 3 .
  • a thermoformed layer can be placed in a mold cavity, with matched curvature, and fixtured using (e.g.) a vacuum chuck.
  • a second mold surface forms a mold cavity. This surface may introduce a prescribed refractive power, or it may introduce no refractive power after injection molding.
  • a resin is injected between the formed part and the mold surface to create a mechanical support substrate.
  • the resin is preferably isotropic, though because it is deposited outside of the polarization-management structure, the specification for birefringence is typically much more relaxed.
  • the resin may be introduced above the glass transition temperature of the resin, or it may be a monomer that crosslinks at relatively low temperature. The resin bonds to the surface of the formed layer. After curing, the part is ejected from the cavity and the geometry of the inner surface is substantially preserved.
  • the injection-molded resin may further include perimeter features used to facilitate fastening the first and second thermoformed parts. Fasteners may be (e.g.) mechanical, adhesive-based, chemical welding, thermal-welding, or RF welding. The fastening of first and second parts may form a sealed unit that protects the optics from moisture, residue, particulates, and damage due to handling. It may further create a mechanically robust package that preserves optical characteristics under mechanical load.
  • An advantage of insert-molding is that it can lock in the desired local surface normal of the reflective layer (or surface that later receives a reflective coating).
  • a thin Layer 1 or Layer 2 may not preserve the desired shape after initial thermoforming. When it “springs” from the mold surface, with possible residual stress, it may relax and assume a shape that is not exactly conformal to the mold. The distortion of the reflective surface can compromise optical performance. This can be mitigated by modifying the mold shape to anticipate and compensate for the effect, though this may not give adequate control.
  • the additional support of the substrate material can provide better fidelity of the final layer curvature after release.
  • the fastening of the first and second layer can further be used to define and maintain the local surface normal of each reflective layer.
  • Thin compound-curved Layer 1 and Layer 2 may have insufficient mechanical support, such that a mechanical load significantly impacts the reflected wavefront distortion and therefore the performance of the HTP system.
  • This issue can be largely overcome according to the invention by mechanically constraining the perimeter of Layer 1 and Layer 2.
  • the optical elements are circular and one or both have compound curvature. The radii of curvature are such that joining the elements always forms an air-spaced cavity, per the invention.
  • Constraining the perimeter can be accomplished directly by joining the two elements, or indirectly by placing each element in a ring-shaped frame (or the like) that constrains the perimeter.
  • Joining Layer 1 and Layer 2 directly can be accomplished adhesively, chemically/mechanically using welding, etc. Regardless, the action of constraining the perimeter of each element ensures a much more robust optical performance.
  • the desired optical power is achieved by thermoforming both Layer 1 and Layer 2. This, along with constraining the perimeter, provides a package with more robust optical performance under mechanical load. Even a small base curve (e.g. 1-2 diopter) formed into a layer can provide a significant advantage in preserving overall performance under mechanical load relative to a plano layer. A plano layer may require substantially greater thickness in order to accomplish equivalent mechanical support.
  • a small base curve e.g. 1-2 diopter
  • FIG. 3 shows a sequence of manufacturing steps for making an embodiment of the invention, with convex outer surfaces (i.e., concave reflective elements).
  • process step A the films of Layer 1 are bonded together to form a flat laminate.
  • the adhesive for laminating the layers is preferably compatible with the forming process, such as bondline thickness, bond-strength, durometer, and glass-transition temperature. Not shown is a similar process for forming Layer 2.
  • process step B the flat laminates are cut to a prescribed part geometry from the mother-sheet and thermoformed to a prescribed compound curvature. The thin formed units are then inserted into a mold where a vacuum chuck, matched in curvature to the original thermoforming mold, holds the part in a conformal manner.
  • Process step C creates an outer substrate that supports the thin part.
  • Step D simply shows the insert molded part ejected from the mold.
  • Process step E shows a PVD partial-reflector coating applied to the concave surface of Layer 1 (note that Layer 1 is flipped around before process step F). Not shown is a possible AR coating applied to the concave (QW) surface of Layer 2.
  • Process step F shows the perimeter joining of the two layers to produce a bi-convex HTP system, with bi-concave internal reflectors. Not shown is the possible AR coating of both outer surfaces of the assembled HTP system.
  • FIG. 4 A convex (concave) Layer 1 surface represents a reflection from a concave (convex) mirror in the second pass.
  • a convex (concave) Layer 2 surface represents a reflection from a concave (convex) mirror in the first pass.
  • FIG. 4 a shows the case where Layer 1 is convex, and Layer 2 is planar.
  • Layer 1 can be planar with Layer 2 convex.
  • FIG. 4 b shows the case of a bi-convex HTP lens, with arbitrary curvature for each layer.
  • FIG. 4 c shows the case where Layer 1 is convex and Layer 2 is concave.
  • FIG. 4 d shows the case where Layer 1 is concave and Layer 2 is convex.
  • the invention includes all combinations of curvatures that result in a triple-pass optical system with an internal air space.
  • the invention contemplates that additional (e.g. plano) optical elements may be inserted between Layer 1 and Layer 2 during assembly of the formed parts.
  • a plano QW2 e.g. with double-side AR coating
  • an isotropic substrate may be placed between Layer 1 and Layer 2 during perimeter joining.
  • thermoform QW2 is eliminated, which may improve the quality of polarization management.
  • the configuration shown in FIG. 5 has external isotropic substrates (S 1 and S 2 ) which encapsulate functional layers L1 and L2.
  • Layer 1 may include one or more of a linear polarizer, a quarter-wave retarder, and a partial reflector (in that order).
  • Layer 2 may include one or more of a reflective polarizer and a linear polarizer (in that order). Antireflection coatings may be applied to the surfaces shown to improve performance.
  • the configuration shown has two hollow cavities; one between L1 and QW2 and a second between QW2 and L2.
  • the invention contemplates that the air-spaced cavity formed between Layer 1 and Layer 2 may be filled with an isotropic fluid or optical grease to provide an additional refractive power, as is illustrated in FIG. 6 . Because this material is not cross-linked, it can be free of the usual birefringence concerns. A reservoir at the perimeter may further be required to manage conditions of changing pressure due to e.g. temperature change.
  • the configuration shown in FIG. 6 has external isotropic substrates (S 1 and S 2 ) which encapsulate functional layers L1 and L2.
  • Layer 1 may include one or more of a linear polarizer (POL 1 ), a quarter-wave retarder (QW1), and a partial reflector (PR) (in that order).
  • Layer 2 may include one or more of a quarter-wave retarder (QW2), a reflective polarizer (RP), and a linear polarizer (POL2) (in that order, as viewed in the drawing from left to right).
  • QW2 quarter-wave retarder
  • RP reflective polarizer
  • POL2 linear polarizer
  • the optical system may provide a linear polarizer or linearly polarized input, allowing POL1 to be omitted from the Layer 1 stack.
  • Antireflection coatings may be applied to the surfaces shown to improve performance.
  • a linear or circular polarizer may be needed between the reflective polarizer and the exit medium to mitigate stray light.
  • ambient light originating from the environment or originating from the optical system can be reduced using an exit linear or circular polarizer.
  • Such an element can be added to the Layer 2 laminate.
  • the hollow triple-pass lens of the invention may be used in any optical system where conventional refractive/reflective optical elements are used. This may be for the purpose of manipulating radiation, such as for concentrating, collimating, diffusing, displaying or image forming.
  • FIG. 7 shows the example where the HTP lens is used for light-weight prescription sunglasses.
  • the HTP lens could similarly be used for inspection magnifiers, readers, or augmented-reality glasses/headsets.
  • Small HTP lenses could be embedded in another lens or transparent substrate for creating bifocal lenses.
  • More complex structures can be fabricated using the inventive concepts.
  • a two-dimensional array of small HTP lenses shown in FIG. 8
  • a two-dimensional array of small HTP lenses shown in FIG. 8
  • Such lenslet arrays can be used to focus collimated light into an array of spots.
  • the lenslet arrays can be used to collimate an array of point sources.

Abstract

Hollow optical elements that derive optical power from compound-curved reflective surfaces to produce a desired composite optical power. The reflective surfaces in combination with polarization control, can produce a triple-pass arrangement that determines the optical power. Two functional films, one or both of which are formed (e.g., thermoformed), can be joined at the perimeter to form units that are mechanically robust and therefore preserve optical performance under mechanical load. The air-spaced cavity formed between the two layers is free of birefringence concerns, where polarization control is crucial to contrast. These optical elements can be installed in frames or headsets to form lightweight wearable magnifiers, wide-angle collimators, tele-photo lenses, or for any application requiring optical power. They may be most appropriate for applications where light efficiency is not critical, such as well-lit environments, where the insertion-loss of 1 to 2 stops is not problematic

Description

    CROSS-REFERENCE TO RELATED APPLICATIONS
  • This application claims priority to U.S. Provisional Application No. 62/623,493, filed Jan. 29, 2018, the contents of which are incorporated herein by reference in its entirety.
  • BACKGROUND
  • Eyewear lenses with significant refractive power are typically heavy and uncomfortable to wear over long periods of time. High refractive index polymers can mitigate this, but not completely solve the issue when high power is needed. Moreover, there are multiple applications where high optical power is required in a compact arrangement and weight is an issue. This may include any wearable, but also applications such as drones, where mass of a payload is paramount.
  • The prior art discloses arrangements that utilize polarization to create a triple-pass compact magnifier, or a wide-angle collimator (WAC). The triple-pass occurs in a cavity formed between an input partial reflector and an output reflective polarizer. In the first pass of the cavity, the reflective polarizer acts as a mirror. Light returned by the reflective polarizer is then converted to the orthogonal state-of-polarization (SOP) after reflection from the partial reflector. For example, the double-pass of a quarter-wave (QW) retarder in the cavity converts a linear SOP to the orthogonal SOP. Converted light is then transmitted by the reflective polarizer. In arrangements using reflective polarizers with linear eigenpolarizations, an input circular polarizer can be used external to the cavity. Optical power can be derived via reflection from the partial reflector, reflection from the reflective polarizer, or both.
  • It is against this background that the techniques described herein have been developed.
  • SUMMARY
  • Disclosed herein is an optical system that includes a first optical element through which light enters the optical system and a second optical element retained against the first optical element. At least one of the first optical element and the second optical element are non-planar. A hollow cavity is formed between the first optical element and the second optical element. Each of the first optical element and the second optical element reflect light such that light passes at least three times through the hollow cavity before exiting the optical system via the second optical element.
  • The first optical element may include a quarter-wave retarder and a partial reflector. The second optical element includes a quarter-wave retarder and a reflective polarizer. The first optical element may also include a polarizer. At least one of the first optical element and the second optical element may be convex. At least one of the first optical element and the second optical element may be concave.
  • The system may further include a support substrate attached to at least one of the optical elements. The support substrate may be an isotropic substrate. The support substrate may be a resin. The hollow cavity may be at least partially filled with an isotropic optical fluid. The system may further include an exit polarizer adjacent the second optical element. The second optical element may include a planar quarter-wave retarder and a non-planar reflective polarizer. The first optical element and the second optical element may be joined together along perimeters thereof.
  • Also disclosed here in an optical system that includes a first optical element through which light enters the optical system, the first optical element including a quarter-wave retarder and a partial reflector; and a second optical element held in a fixed position relative to the first optical element, with a hollow cavity formed between the first optical element and the second optical element, the second optical element including a quarter-wave retarder and a reflective polarizer. At least one of the first optical element and the second optical element are non-planar. Each of the first optical element and the second optical element reflect light such that light passes at least three times through the hollow cavity before exiting the optical system via the second optical element.
  • The first optical element may also include a polarizer.
  • Further disclosed herein is an optical system that includes a first optical element through which light enters the optical system, the first optical element including a quarter-wave retarder and a partial reflector; and a second optical element through which light exits the optical system, the second optical element held in a fixed position relative to the first optical element, with a hollow cavity formed between the first optical element and the second optical element, the second optical element including a quarter-wave retarder and a reflective polarizer. At least one of the first optical element and the second optical element are non-planar. Each of the first optical element and the second optical element reflect light back into the hollow cavity at least one time.
  • The first optical element may also include a polarizer.
  • BRIEF DESCRIPTION OF THE FIGURES
  • FIG. 1 shows a prior art wide-angle collimator.
  • FIG. 2 shows a triple-pass optical system as described herein.
  • FIG. 3 shows a sequence of manufacturing steps in which a triple-pass optical system may be manufactured.
  • FIGS. 4a, 4b, 4c, and 4d show different possible curvatures for the two layers of a triple-pass optical system.
  • FIG. 5 shows a bi-convex HTP lens with Layer 1 and Layer 2 sealed at the perimeter, where a plano QW2 is placed between the layers.
  • FIG. 6 shows a biconvex HTP lens filled with one of air, optical fluid, or grease.
  • FIG. 7 shows a pair of eyewear incorporating the hollow triple-pass lens of the invention.
  • FIG. 8 shows an array of hollow triple-pass lenses for focusing light or for collimating an array of light sources.
  • DETAILED DESCRIPTION
  • While the embodiments disclosed herein are susceptible to various modifications and alternative forms, specific embodiments thereof have been shown by way of example in the drawings and are herein described in detail. It should be understood, however, that it is not intended to limit the invention to the particular form disclosed, but rather, the invention is to cover all modifications, equivalents, and alternatives of embodiments of the invention as defined by the claims. The disclosure is described with reference to the drawings, wherein like reference numbers denote substantially similar elements.
  • FIG. 1 shows a prior art WAC, consisting of a display with a circular polarized output, a pair of cemented singlets with a partially-reflective coating on one surface, a QW retarder, and a plano reflective (e.g., 3M DBEF) polarizer. In this case, optical power is derived entirely from the reflection that occurs at the concave surface of the partial reflector. The singlets are glass elements. Typical displays do not have an intrinsic circularly-polarized output. An LCD usually has a linearly-polarized output, where a QW retarder can be added to convert to a circularly-polarized state. An organic light-emitting diode (OLED) display often has a circular polarizer (QW facing the display) for blocking (e.g., ambient) light incident on the output-surface. In this case a QW is again required on the output side to convert to a circular SOP. For more general inputs, such as using the WAC as a magnifier of natural light, the input may be unpolarized. The invention contemplates an arbitrary input polarization, or degree of polarization. This means that the function of the unit is incorporated into the first and second layers of the WAC.
  • Glass elements may be preferred in a WAC design due to the need for precise polarization management and optical quality. But this can produce structures that are heavy and, for example, uncomfortable to wear on the face. Polymers are lighter, but birefringence in polymers can damage the polarization management and introduce stray light and ghost images. In general, solid optical elements facilitate conventional lamination of films onto the plano surface, supporting the functional layers and ensuring robust performance. However, apart from acting as carrier substrates, these elements may serve no purpose, while adding weight and birefringence.
  • In a particular embodiment, taught herein is a hollow triple-pass (HTP) system that performs as a stand-alone unit; performing the desired optical function regardless of the input degree of polarization. The HTP includes two functional layers (first and second optical elements) that are joined together to form an air-spaced optical cavity. Layer 1 contains a partially reflective layer, and Layer 2 contains a reflective polarizer. Layers 1 and 2 may have a different radius of curvature, such that a prescribed optical power is achieved in triple-pass. As can be appreciated, incoming light passes initially through Layer 1 and through the cavity where it impinges upon Layer 2. This is the first pass of the light through the cavity. The light is reflected from the reflective polarizer of Layer 2 back through the cavity where it impinges upon Layer 1. This is the second pass of the light through the cavity. The light is reflected from the partially reflective layer (partial reflector) of Layer 1 back through the cavity where it impinges upon Layer 2. This is the third pass of the light through the cavity. At this point, the light passes through Layer 2 and exits the HTP system.
  • FIG. 2 shows an example of an embodiment, where both Layer 1 and Layer 2 have compound curvature. Layer 1 may be fabricated as a flat laminate, containing an input linear polarizer, a QW retarder (QW1) oriented at 45° to the absorption axis, a partial reflector, and possibly additional substrates for mechanical support. Layer 2 may also be fabricated as a flat laminate, containing a QW retarder (QW2) oriented at −45° a reflective polarizer (e.g., Asahi-Kasei wire grid polarizer (WGP)), oriented with reflection-axis crossed with the absorption axis of the input polarizer, and possibly additional substrates for mechanical support. It can be appreciated that light passes into the optical system and is polarized by the input polarizer before passing through QW1 and then through the partial reflector and into the cavity. This is the only pass of light through QW1. The circularly polarized light passes through the cavity and impinges upon QW2 where it is converted to linear polarized light and is reflected by the wire grid polarizer back through QW2, where the light is again converted to circularly polarized light. This is the second pass of light through QW2. The circularly polarized light passes through the cavity and impinges upon the partial reflector where it is reflected and passes back through the cavity for a third time. The circularly polarized light impinges upon QW2 where it is converted to linearly polarized light of the proper orientation to pass through the wire grid polarizer and exit the optical system. That represents the third pass through QW3. Also, it can be seen that light is reflected once by the partial reflector and once by the reflective (wire grid) polarizer.
  • Circular parts can be die cut from the mother-sheet of each laminate and thermoformed to a desired radius of curvature. In the event that a thermoformed Layer 1 is required, the partial reflector must largely preserve the desired optical performance when subjected to the forming process. For example, in the event that a physical vapor deposited (PVD) partial reflector is used, it cannot (e.g.) craze (crack or shatter) when thermoformed. In the event that this is not practical, the partial reflector can be omitted from the flat lamination, with the partial reflector coating applied to the inner surface after forming.
  • If additional substrates are required to provide mechanical support, they can be integrated into the flat lamination of each layer, or they can be applied after forming. In any case, it may be preferred that support substrates be placed outside of the polarization-management structure, such that birefringence issues are mitigated. For example, a mechanical support substrate can be placed before (outside) the linear polarizer of Layer 1, such that the partial reflector forms an inner surface of the cavity. Similarly, a mechanical support substrate can be placed after (outside) the reflective polarizer of Layer 2, such that QW2 forms an inner surface of the cavity. In the event that mechanical support substrates are required between the input polarizer and the reflective polarizer, they should be substantially isotropic. For example, triacetyl cellulose (TAC) shows relatively little in-plane birefringence when thermoformed, though it does exhibit some negative c-plate retardation as-cast. A c-plate is a uniaxial retarder with optic axis normal to the substrate. However, there are isotropic substrates, such as Z-TAC (by Fuji), which have substantially zero in-plane and thickness-direction retardation. An example alternative is a high molecular weight (e.g.) polycarbonate resin, which is stretched to produce a few thousand nanometers of retardation along the axis of the adjacent polarizer. The stretching provides a well-defined optic axis, such that the forming process does little to rotate it and it is functionally isotropic. If the support substrate is applied using injection molding, it may be a material that tends to have low birefringence. For example, resins that are either intrinsically isotropic or can be annealed to mitigate birefringence may be preferred. Also, materials such as polyurethanes that can cross-link near room-temperature may show minimal retardation. Again, it may be preferable that mechanical support substrates are placed outside of the path where polarization management is critical. In the usual manner, antireflective coatings can also be applied to all exposed surfaces to further mitigate the effects of Fresnel reflections. These coatings can be applied either before or after thermoforming.
  • As an alternative, first quarter-wave (QW1) and second quarter-wave (QW2) retarders need not be placed on opposing substrates (on opposed sides of the cavity). For example, QW1 and QW2 can both be laminated to the substrate containing the partial reflector, on opposite sides of the partial reflector.
  • In an exemplary polarization management design, pure circular polarization is output by QW1, with pure linear polarization output by QW2 in the forward-pass. This may use a single or multi-layer achromatic retarder stack to convert from linear-to-circular and from circular-to-linear over the spectral range of use (e.g. 400-700 nm). These polarization conversions can be accomplished via (e.g.) achromatic polarization basis-vector transformations as described in co-pending U.S. Provisional Patent Application No. 62/637,832, entitled “Retarder Stack Pairs for Polarization Basis Vector Transformations,” which is incorporated by reference. An exemplary combination of polarization transformations may further accomplish this over the full range of incidence angles.
  • Mechanical support substrates can also be applied after forming, either before or after joining the layers. They can be applied in a single step after forming to also serve the role of perimeter joining. That is, the external (e.g. injection molded) material can encapsulate Layer 1 and Layer 2. An example of this type of mechanical support uses insert molding as shown in FIG. 3. A thermoformed layer can be placed in a mold cavity, with matched curvature, and fixtured using (e.g.) a vacuum chuck. A second mold surface forms a mold cavity. This surface may introduce a prescribed refractive power, or it may introduce no refractive power after injection molding. A resin is injected between the formed part and the mold surface to create a mechanical support substrate. The resin is preferably isotropic, though because it is deposited outside of the polarization-management structure, the specification for birefringence is typically much more relaxed. The resin may be introduced above the glass transition temperature of the resin, or it may be a monomer that crosslinks at relatively low temperature. The resin bonds to the surface of the formed layer. After curing, the part is ejected from the cavity and the geometry of the inner surface is substantially preserved. The injection-molded resin may further include perimeter features used to facilitate fastening the first and second thermoformed parts. Fasteners may be (e.g.) mechanical, adhesive-based, chemical welding, thermal-welding, or RF welding. The fastening of first and second parts may form a sealed unit that protects the optics from moisture, residue, particulates, and damage due to handling. It may further create a mechanically robust package that preserves optical characteristics under mechanical load.
  • An advantage of insert-molding is that it can lock in the desired local surface normal of the reflective layer (or surface that later receives a reflective coating). For example, a thin Layer 1 or Layer 2 may not preserve the desired shape after initial thermoforming. When it “springs” from the mold surface, with possible residual stress, it may relax and assume a shape that is not exactly conformal to the mold. The distortion of the reflective surface can compromise optical performance. This can be mitigated by modifying the mold shape to anticipate and compensate for the effect, though this may not give adequate control. By injection molding while the formed part is under load and conformal to the mold, the additional support of the substrate material can provide better fidelity of the final layer curvature after release. The fastening of the first and second layer can further be used to define and maintain the local surface normal of each reflective layer.
  • Thin compound-curved Layer 1 and Layer 2 may have insufficient mechanical support, such that a mechanical load significantly impacts the reflected wavefront distortion and therefore the performance of the HTP system. This issue can be largely overcome according to the invention by mechanically constraining the perimeter of Layer 1 and Layer 2. Consider the case where the optical elements are circular and one or both have compound curvature. The radii of curvature are such that joining the elements always forms an air-spaced cavity, per the invention. Constraining the perimeter can be accomplished directly by joining the two elements, or indirectly by placing each element in a ring-shaped frame (or the like) that constrains the perimeter. Joining Layer 1 and Layer 2 directly can be accomplished adhesively, chemically/mechanically using welding, etc. Regardless, the action of constraining the perimeter of each element ensures a much more robust optical performance.
  • In some preferred embodiments, the desired optical power is achieved by thermoforming both Layer 1 and Layer 2. This, along with constraining the perimeter, provides a package with more robust optical performance under mechanical load. Even a small base curve (e.g. 1-2 diopter) formed into a layer can provide a significant advantage in preserving overall performance under mechanical load relative to a plano layer. A plano layer may require substantially greater thickness in order to accomplish equivalent mechanical support.
  • FIG. 3 shows a sequence of manufacturing steps for making an embodiment of the invention, with convex outer surfaces (i.e., concave reflective elements). In process step A, the films of Layer 1 are bonded together to form a flat laminate. The adhesive for laminating the layers is preferably compatible with the forming process, such as bondline thickness, bond-strength, durometer, and glass-transition temperature. Not shown is a similar process for forming Layer 2. In process step B, the flat laminates are cut to a prescribed part geometry from the mother-sheet and thermoformed to a prescribed compound curvature. The thin formed units are then inserted into a mold where a vacuum chuck, matched in curvature to the original thermoforming mold, holds the part in a conformal manner. A resin is injected between the part and a mold surface of prescribed geometry. Process step C creates an outer substrate that supports the thin part. Step D simply shows the insert molded part ejected from the mold. Process step E shows a PVD partial-reflector coating applied to the concave surface of Layer 1 (note that Layer 1 is flipped around before process step F). Not shown is a possible AR coating applied to the concave (QW) surface of Layer 2. Process step F shows the perimeter joining of the two layers to produce a bi-convex HTP system, with bi-concave internal reflectors. Not shown is the possible AR coating of both outer surfaces of the assembled HTP system.
  • Various configurations for achieving prescribed triple-pass optical power can be produced via the selection of curvature of Layer 1 and Layer 2. Compound curvatures can be spherical, aspherical, toroidal, or the like. HTP systems can be produced using various combinations of, for example, plano, concave and convex layers as shown in FIG. 4. A convex (concave) Layer 1 surface represents a reflection from a concave (convex) mirror in the second pass. A convex (concave) Layer 2 surface represents a reflection from a concave (convex) mirror in the first pass. FIG. 4a shows the case where Layer 1 is convex, and Layer 2 is planar. As discussed previously, it may be necessary to increase the substrate thickness of Layer 2 for mechanical stability relative to that require for a compound curved unit. Alternatively, Layer 1 can be planar with Layer 2 convex. FIG. 4b shows the case of a bi-convex HTP lens, with arbitrary curvature for each layer. FIG. 4c shows the case where Layer 1 is convex and Layer 2 is concave. FIG. 4d shows the case where Layer 1 is concave and Layer 2 is convex. The invention includes all combinations of curvatures that result in a triple-pass optical system with an internal air space.
  • The invention contemplates that additional (e.g. plano) optical elements may be inserted between Layer 1 and Layer 2 during assembly of the formed parts. For example, a plano QW2 (e.g. with double-side AR coating) on an isotropic substrate, may be placed between Layer 1 and Layer 2 during perimeter joining. In so doing, the need to thermoform QW2 is eliminated, which may improve the quality of polarization management. The configuration shown in FIG. 5 has external isotropic substrates (S1 and S2) which encapsulate functional layers L1 and L2. Layer 1 may include one or more of a linear polarizer, a quarter-wave retarder, and a partial reflector (in that order). Layer 2 may include one or more of a reflective polarizer and a linear polarizer (in that order). Antireflection coatings may be applied to the surfaces shown to improve performance. The configuration shown has two hollow cavities; one between L1 and QW2 and a second between QW2 and L2.
  • The invention contemplates that the air-spaced cavity formed between Layer 1 and Layer 2 may be filled with an isotropic fluid or optical grease to provide an additional refractive power, as is illustrated in FIG. 6. Because this material is not cross-linked, it can be free of the usual birefringence concerns. A reservoir at the perimeter may further be required to manage conditions of changing pressure due to e.g. temperature change. The configuration shown in FIG. 6 has external isotropic substrates (S1 and S2) which encapsulate functional layers L1 and L2. Layer 1 may include one or more of a linear polarizer (POL 1), a quarter-wave retarder (QW1), and a partial reflector (PR) (in that order). Layer 2 may include one or more of a quarter-wave retarder (QW2), a reflective polarizer (RP), and a linear polarizer (POL2) (in that order, as viewed in the drawing from left to right). In the event that one or more functional layers are omitted from the formed Layer 1 and Layer 2, they may be provided as an external optic. For instance, the optical system may provide a linear polarizer or linearly polarized input, allowing POL1 to be omitted from the Layer 1 stack. Antireflection coatings may be applied to the surfaces shown to improve performance.
  • The invention contemplates that additional functional layers may be added to improve system-level optical performance, as shown in Layer 2 of FIG. 6. For example, a linear or circular polarizer may be needed between the reflective polarizer and the exit medium to mitigate stray light. For example, ambient light originating from the environment or originating from the optical system can be reduced using an exit linear or circular polarizer. Such an element can be added to the Layer 2 laminate.
  • The hollow triple-pass lens of the invention may be used in any optical system where conventional refractive/reflective optical elements are used. This may be for the purpose of manipulating radiation, such as for concentrating, collimating, diffusing, displaying or image forming. FIG. 7 shows the example where the HTP lens is used for light-weight prescription sunglasses. The HTP lens could similarly be used for inspection magnifiers, readers, or augmented-reality glasses/headsets. Small HTP lenses could be embedded in another lens or transparent substrate for creating bifocal lenses.
  • More complex structures can be fabricated using the inventive concepts. For example, a two-dimensional array of small HTP lenses, shown in FIG. 8, can be created by registering an array of thermoformed Layer 1 structures with an array of thermoformed Layer 2 structures. Such lenslet arrays can be used to focus collimated light into an array of spots. Or conversely, the lenslet arrays can be used to collimate an array of point sources.
  • While the embodiments of the invention have been illustrated and described in detail in the drawings and foregoing description, such illustration and description are to be considered as examples and not restrictive in character. For example, certain embodiments described hereinabove may be combinable with other described embodiments and/or arranged in other ways (e.g., process elements may be performed in other sequences). Accordingly, it should be understood that only example embodiments and variants thereof have been shown and described.

Claims (12)

1-5. (canceled)
6. An optical system as defined in claim 17, further including a support substrate attached to at least one of the optical elements.
7. An optical system as defined in claim 6, wherein the support substrate is an isotropic substrate.
8. An optical system as defined in claim 6, wherein the support substrate is a resin.
9. An optical system as defined in claim 17, wherein the hollow cavity is at least partially filled with an isotropic optical fluid.
10. An optical system as defined in claim 17, further including an exit polarizer adjacent the second optical element.
11. (canceled)
12. An optical system as defined in claim 17, wherein the first optical element and the second optical element are joined together along perimeters thereof.
13-16. (canceled)
17. An optical system, comprising:
a first optical element configured so that light enters the optical system therethrough, wherein the first optical element is a laminated structure that includes a first isotropic substrate, a first linear polarizer, a quarter-wave retarder, and a partial reflector; and
a second optical element retained against the first optical element, wherein the second optical element is a laminated structure that includes a quarter-wave retarder, a reflective polarizer, a second linear polarizer, and a second isotropic substrate;
wherein at least one of the first optical element and the second optical element are non-planar;
wherein a hollow cavity is defined between the first optical element and the second optical element; and
wherein each of the first optical element and the second optical element are configured to reflect light such that light will pass at least three times through the hollow cavity before exiting the optical system via the second optical element.
18. An optical system as defined in claim 17, wherein the hollow cavity is at least partially filled with an isotropic optical fluid.
19. An optical system as defined in claim 17, wherein the first optical element and the second optical element are joined together along perimeters thereof.
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Families Citing this family (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP7263643B2 (en) 2017-03-08 2023-04-25 メタ プラットフォームズ テクノロジーズ, リミテッド ライアビリティ カンパニー Wide angle variable neutral density filter
US10664676B2 (en) 2017-06-12 2020-05-26 Will Semiconductor (Shanghai) Co. Ltd. Systems and methods for reducing unwanted reflections in display systems incorporating an under display biometric sensor
CN111108428A (en) 2017-07-17 2020-05-05 加里夏普创新有限责任公司 Wide angle compensation of uniaxial retarder stacks
WO2019148176A1 (en) 2018-01-29 2019-08-01 Sharp Gary D Hollow triple-pass optical elements
US11249355B2 (en) 2018-01-29 2022-02-15 Gary Sharp Innovations, Llc Color switch for reduced color cross-talk
WO2019169170A1 (en) 2018-03-02 2019-09-06 Sharp Gary D Retarder stack pairs for polarization basis vector transformations
JP7151255B2 (en) * 2018-08-06 2022-10-12 セイコーエプソン株式会社 virtual image display
US11586024B1 (en) 2019-08-05 2023-02-21 Meta Platforms Technologies, Llc Peripheral see-through pancake lens assembly and display device with same
US11579425B1 (en) * 2019-08-05 2023-02-14 Meta Platforms Technologies, Llc Narrow-band peripheral see-through pancake lens assembly and display device with same
US11467332B2 (en) 2019-09-10 2022-10-11 Meta Platforms Technologies, Llc Display with switchable retarder array
US11391948B2 (en) 2019-09-10 2022-07-19 Facebook Technologies, Llc Display illumination using a grating
US11726336B2 (en) 2019-09-10 2023-08-15 Meta Platforms Technologies, Llc Active zonal display illumination using a chopped lightguide
US11372247B2 (en) 2019-09-17 2022-06-28 Facebook Technologies, Llc Display device with diffusive display and see-through lens assembly

Family Cites Families (170)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4511225A (en) 1982-12-23 1985-04-16 Lipson Herbert G Variable neutral density laser goggles
US4884876A (en) 1983-10-30 1989-12-05 Stereographics Corporation Achromatic liquid crystal shutter for stereoscopic and other applications
US5528393A (en) 1989-10-30 1996-06-18 Regents Of The University Of Colorado Split-element liquid crystal tunable optical filter
US5381253A (en) 1991-11-14 1995-01-10 Board Of Regents Of University Of Colorado Chiral smectic liquid crystal optical modulators having variable retardation
US5132826A (en) 1989-10-30 1992-07-21 The University Of Colorado Foundation, Inc. Ferroelectric liquid crystal tunable filters and color generation
US5243455A (en) 1990-05-11 1993-09-07 The University Of Colorado Foundation, Inc. Chiral smectic liquid crystal polarization interference filters
US5231521A (en) 1989-10-30 1993-07-27 The University Of Colorado Foundation, Inc. Chiral smectic liquid crystal polarization interference filters
US5552912A (en) 1991-11-14 1996-09-03 Board Of Regents Of The University Of Colorado Chiral smectic liquid crystal optical modulators
US5493426A (en) 1991-11-14 1996-02-20 University Of Colorado Foundation, Inc. Lateral electrode smectic liquid crystal devices
US5387958A (en) 1992-06-30 1995-02-07 Sony Electronics, Inc. Electro-optical control of light attenuation in the optical path of a camera
US5619355A (en) 1993-10-05 1997-04-08 The Regents Of The University Of Colorado Liquid crystal handedness switch and color filter
US5627666A (en) 1994-07-27 1997-05-06 Board Of Regents Of The University Of Colorado Liquid crystal phase modulator using cholesteric circular polarizers
JPH08122642A (en) * 1994-10-26 1996-05-17 Olympus Optical Co Ltd Optical system
JP3295583B2 (en) * 1994-12-19 2002-06-24 シャープ株式会社 Optical device and head-mounted display using the optical device
US5574553A (en) 1994-12-27 1996-11-12 The United States Of America As Represented By The Secretary Of The Air Force Ladar receiver incorporating an optical amplifier and polarization optical mixer
US5689317A (en) 1995-03-22 1997-11-18 Cambridge Research Instrumentation, Inc. Tunable color filter
US5999240A (en) 1995-05-23 1999-12-07 Colorlink, Inc. Optical retarder stack pair for transforming input light into polarization states having saturated color spectra
US6707516B1 (en) 1995-05-23 2004-03-16 Colorlink, Inc. Single-panel field-sequential color display systems
US6380997B1 (en) 1995-04-07 2002-04-30 Colorlink, Inc. Achromatic polarization inverters for displaying inverse frames in DC balanced liquid crystal displays
US6704065B1 (en) 1995-04-07 2004-03-09 Colorlink, Inc. Optical system for producing a modulated color image
US6882384B1 (en) 1995-05-23 2005-04-19 Colorlink, Inc. Color filters and sequencers using color selective light modulators
US6183091B1 (en) 1995-04-07 2001-02-06 Colorlink, Inc. Color imaging systems and methods
US5751384A (en) 1995-05-23 1998-05-12 The Board Of Regents Of The University Of Colorado Color polarizers for polarizing an additive color spectrum along a first axis and it's compliment along a second axis
US6078374A (en) 1995-04-07 2000-06-20 Colorlink, Inc. Spatially switched achromatic compound retarder
US6252638B1 (en) 1995-05-23 2001-06-26 Colorlink, Inc. Color controllable illumination device, indicator lights, transmissive windows and color filters employing retarder stacks
US5658490A (en) 1995-04-07 1997-08-19 Board Of Regents Of The University Of Colorado Liquid crystal achromatic compound retarder
US5822021A (en) 1996-05-14 1998-10-13 Colorlink, Inc. Color shutter liquid crystal display system
US6049367A (en) 1995-05-23 2000-04-11 Colorlink, Inc. Polarization manipulating device modulator with retarder stack which preconditions light for modulation and isotropic states
US6273571B1 (en) 1995-05-23 2001-08-14 Colorlink, Inc. Display architectures using an electronically controlled optical retarder stack
US5929946A (en) 1995-05-23 1999-07-27 Colorlink, Inc. Retarder stack for preconditioning light for a modulator having modulation and isotropic states of polarization
US6417892B1 (en) 1995-05-23 2002-07-09 Colorlink, Inc. Color filters, sequencers and displays using color selective light modulators
US6141071A (en) 1995-10-30 2000-10-31 Colorlink, Inc. Switchable achromatic polarization rotator
US5870159A (en) 1995-10-30 1999-02-09 Kaj Switchable achromatic polarization rotator
US5781268A (en) 1996-04-09 1998-07-14 Board Of Regents Of The University Of Colorado Polarization-insensitive fabry-perot tunable filter
US5715023A (en) 1996-04-30 1998-02-03 Kaiser Electro-Optics, Inc. Plane parallel optical collimating device employing a cholesteric liquid crystal
US6028656A (en) 1996-10-09 2000-02-22 Cambridge Research & Instrumentation Inc. Optical polarization switch and method of using same
US5892559A (en) 1996-11-25 1999-04-06 Colorlink, Inc. Chromaticity compensating liquid crystal filter
US5892612A (en) 1997-08-07 1999-04-06 Cambridge Research & Instrumentation Inc. Tunable optical filter with white state
GB2331812A (en) 1997-11-26 1999-06-02 Sharp Kk Optical retardation devices
US6173001B1 (en) * 1998-02-18 2001-01-09 Massachusetts Institute Of Technology Output couplers for lasers
US6075651A (en) 1999-01-28 2000-06-13 Kaiser Electro-Optics, Inc. Compact collimating apparatus
US6638583B1 (en) 2000-03-16 2003-10-28 Colorlink, Inc. Method and apparatus for laminating stacks of polycarbonate films
US6650377B2 (en) 2000-05-08 2003-11-18 Colorlink, Inc. Two panel projection systems
US6563638B2 (en) * 2001-04-26 2003-05-13 Raytheon Company Wide-angle collimating optical device
US6961179B2 (en) 2001-11-30 2005-11-01 Colorlink, Inc. Compensated color management systems and methods
US7002752B2 (en) 2001-11-30 2006-02-21 Colorlink, Inc. Three-panel color management systems and methods
US6816309B2 (en) 2001-11-30 2004-11-09 Colorlink, Inc. Compensated color management systems and methods
US7083282B1 (en) 2002-02-19 2006-08-01 Colorlink, Inc. Light recycling colored light source and method of using
US7298386B1 (en) 2002-05-14 2007-11-20 Colorlink, Inc. Sequential color display system and method
US7154667B2 (en) 2002-08-30 2006-12-26 Colorlink, Inc. Birefringent networks
US7106509B2 (en) 2002-09-06 2006-09-12 Colorlink, Inc. Filter for enhancing vision and/or protecting the eyes and method of making a filter
US6922221B2 (en) 2002-10-17 2005-07-26 Research Foundation Of The University Of Central Florida Broadband quarter-wave film device including in combination a chromatic half-wave film and a TN-LC polymeric film
EP1556732A4 (en) 2002-10-30 2006-01-11 Colorlink Inc Oblique plate compensators for projection display systems
US7195356B1 (en) 2003-09-22 2007-03-27 Colorlink, Inc. Split-path color switching system and method
US20090052838A1 (en) 2004-03-22 2009-02-26 Mcdowall Ian Electrically controlled optical elements and method
WO2005116737A2 (en) 2004-05-24 2005-12-08 Colorlink, Inc. Polarization optics using a low-elasticity organic layer
US7345723B2 (en) 2004-05-24 2008-03-18 Colorlink, Inc. LC panel compensators
EP2434488A3 (en) 2004-12-16 2012-05-30 RealD Inc. Compound quarter-wave retarder for optical disc pickup heads
US20060290853A1 (en) 2005-06-27 2006-12-28 Qi Hong Wide-acceptance-angle circular polarizers
US7692746B2 (en) 2005-08-01 2010-04-06 Real D Digitally-switchable bandpass filter
JP5070209B2 (en) 2005-08-30 2012-11-07 リアルディー インコーポレイテッド High-yield bonding process for producing polycarbonate polarizing lenses
US7528906B2 (en) 2006-01-23 2009-05-05 Real D Achromatic polarization switches
EP1982317B1 (en) 2006-02-10 2017-08-09 RealD Inc. Multi-functional active matrix liquid crystal displays
US20070273970A1 (en) 2006-05-26 2007-11-29 Creative Display Systems, Llc Wide field of view, compact collimating apparatus
EP2067066B1 (en) 2006-09-29 2014-11-05 RealD Inc. Polarization conversion systems for stereoscopic projection
US7866816B2 (en) 2006-10-10 2011-01-11 Lane Research, Llc Variable focus spectacles
US8427394B2 (en) 2006-11-30 2013-04-23 Reald Inc. Shutter glass drive scheme for sequential-color displays
US7898603B2 (en) 2006-11-30 2011-03-01 Reald Inc. Double-shutter lenses with compensators
CN101688940B (en) 2007-05-09 2017-02-08 瑞尔D股份有限公司 polarization conversion system and method for stereoscopic projection
GB2449682A (en) * 2007-06-01 2008-12-03 Sharp Kk Optical system for converting a flat image to a non-flat image
US7583439B2 (en) 2007-08-09 2009-09-01 University Of Central Florida Research Foundation, Inc. Wide-angle and broadband polarization converter
CA2701769C (en) 2007-10-11 2017-02-07 Real D Curved optical filters
MX2010008120A (en) 2008-01-28 2010-11-30 Reald Inc Polarization preserving front projection screen.
US8425041B2 (en) 2008-12-01 2013-04-23 Reald Inc. Stereoscopic projection systems for employing spatial multiplexing at an intermediate image plane
CN102460270B (en) 2009-05-22 2015-08-05 瑞尔D股份有限公司 Light polarization modulator and there is the stereo projecting equipment of light polarization modulator
KR20120050982A (en) 2009-06-29 2012-05-21 리얼디 인크. Stereoscopic projection system employing spatial multiplexing at an intermediate image plane
CN102763034A (en) 2009-12-22 2012-10-31 瑞尔D股份有限公司 Polarization preserving projection screen with engineered particle and method for making same
US8169699B2 (en) 2009-12-22 2012-05-01 Reald Inc. Polarization preserving projection screen with engineered pigment and method for making same
CA2795690C (en) 2009-12-22 2020-06-09 Reald Inc. Polarization preserving projection screen with engineered pigment and method for making same
US9223142B2 (en) 2010-01-20 2015-12-29 Reald Inc. Stereoscopic projection system with multiple power groups
WO2011106567A2 (en) 2010-02-24 2011-09-01 Mothew, Neil Waveplate compensation in projection polarization conversion system
WO2011152955A2 (en) 2010-06-05 2011-12-08 Anthony Wayne Davis Apparatus and method for improved motion picture cameras
US9946088B2 (en) 2010-06-08 2018-04-17 Reald Inc. Stereoscopic liquid crystal display systems
ES2895357T3 (en) 2010-07-13 2022-02-21 Reald Inc Polarization switch with field of view compensation for short-range 3D projection
US8184215B2 (en) 2010-08-17 2012-05-22 Lc-Tec Displays Ab High-speed liquid crystal polarization modulator
US8820937B2 (en) 2010-08-17 2014-09-02 Lc-Tec Displays Ab Optical polarization state modulator assembly for use in stereoscopic three-dimensional image projection system
US8760760B2 (en) 2010-09-30 2014-06-24 Reald Inc. Cleanable coating for projection screen
KR101912093B1 (en) 2010-10-29 2018-10-26 삼성전자 주식회사 Optical apparatus
US20140041205A1 (en) 2010-11-19 2014-02-13 Reald Inc. Method of manufacturing directional backlight apparatus and directional structured optical film
US8746876B2 (en) 2011-02-24 2014-06-10 Reald Inc. Stereoscopic eyewear with stray light management
US8526106B2 (en) 2011-03-09 2013-09-03 Reald Inc. Method and apparatus for managing optical non-uniformities in seaming processes
CN103688211B (en) 2011-05-12 2017-02-15 瑞尔D股份有限公司 Polarization compensated stereoscopic systems
US8941801B2 (en) 2011-06-14 2015-01-27 Reald Inc. In-plane switched active retarder for stereoscopic display systems
US8724218B2 (en) 2011-07-07 2014-05-13 Reald Inc. Speckle reduction using screen vibration techniques and apparatus
CN103782233B (en) 2011-07-13 2016-10-26 瑞尔D股份有限公司 For obtaining the method and apparatus engaging screen material of minimum optical change
WO2013082326A1 (en) 2011-11-30 2013-06-06 Reald Inc. Laser beam scanned display apparatus and method thereof
US9229139B2 (en) 2012-01-19 2016-01-05 Lc-Tec Displays Ab Enhanced vision system implemented with optical shutter alternately transmitting visible radiation and near infrared radiation
US9316865B2 (en) 2012-01-19 2016-04-19 Lc-Tec Displays Ab Rapid switching optical shutter alternately transmitting visible radiation and near infrared radiation
EP2823352B1 (en) 2012-03-06 2019-12-18 RealD Inc. Light efficient acoustically transmissive front projection screens
WO2013144592A1 (en) 2012-03-27 2013-10-03 Adlens Limited Improvements in or relating to deformable membrane assemblies
WO2013169987A1 (en) 2012-05-10 2013-11-14 Oakley, Inc. Eyewear with laminated functional layers
US9235057B2 (en) 2012-05-18 2016-01-12 Reald Inc. Polarization recovery in a directional display device
US9350980B2 (en) 2012-05-18 2016-05-24 Reald Inc. Crosstalk suppression in a directional backlight
WO2014039906A1 (en) 2012-09-06 2014-03-13 Reald Inc. High elastic modulus projection screen substrates
JP6388600B2 (en) 2013-01-04 2018-09-12 リアルディー インコーポレイテッド Multi-primary color backlight for multifunctional active matrix liquid crystal display
US8630037B1 (en) 2013-02-14 2014-01-14 L-C TEC Displays AB Optical shutter for day-night filter operation
US9664945B2 (en) 2013-03-29 2017-05-30 Au Optronics Corporation Display apparatus
WO2014165698A1 (en) 2013-04-05 2014-10-09 Red.Com, Inc. Optical filtering for cameras
US9121999B2 (en) 2013-07-30 2015-09-01 Au Optronics Corporation Optical film and display device having the same
US10012884B2 (en) 2013-09-23 2018-07-03 Lc-Tec Displays Ab High contrast electro-optic liquid crystal camera iris providing angle independent transmission for uniform gray shades
US8891042B1 (en) 2013-09-23 2014-11-18 Lc-Tec Displays Ab Electro-optic liquid crystal camera iris providing angle independent transmission for uniform gray shades
US10401700B2 (en) 2013-09-23 2019-09-03 Lc-Tec Displays Ab High contrast electro-optic liquid crystal camera iris including liquid crystal material mixed with a dye to improve achromatic performance
WO2015073838A1 (en) 2013-11-15 2015-05-21 Reald Inc. High dynamic range, high contrast projection systems
US9575335B1 (en) 2014-01-10 2017-02-21 Oakley, Inc. Eyewear with chroma enhancement for specific activities
CA2965174C (en) 2014-10-21 2023-10-10 Reald Inc. High power handling polarization switches
US10082675B2 (en) 2014-10-21 2018-09-25 Reald Inc. High power handling polarization switches
KR20170056016A (en) * 2015-09-03 2017-05-22 쓰리엠 이노베이티브 프로퍼티즈 컴파니 Method of making optical films and stacks
AU2016342348B2 (en) 2015-10-23 2019-04-11 Gary Sharp Innovations, Inc. Optical filter with color enhancement
US9680132B1 (en) 2015-11-30 2017-06-13 Industrial Technology Research Institute Display device and optical film
US10203566B2 (en) 2015-12-21 2019-02-12 Facebook Technologies, Llc Enhanced spatial resolution using a segmented electrode array
WO2017172277A1 (en) 2016-03-28 2017-10-05 Lc-Tec Displays Ab Electro-optic guest-host liquid crystal variable transmission filter with wide viewing angle
US10429647B2 (en) 2016-06-10 2019-10-01 Facebook Technologies, Llc Focus adjusting virtual reality headset
US10203489B2 (en) 2016-08-02 2019-02-12 Apple Inc. Optical system for head-mounted display
US10901205B1 (en) 2016-08-09 2021-01-26 Facebook Technologies, Llc Focus adjusting liquid crystal lenses in a head-mounted display
US10310273B2 (en) * 2016-09-19 2019-06-04 George Mataban Calm Near-eye-display (NED) that employs rapid spherical image scanning
US10394040B2 (en) * 2016-10-12 2019-08-27 Facebook Technologies, Llc Head mounted display including pancake lens block
US10416461B2 (en) 2016-10-27 2019-09-17 Facebook Technologies, Llc Pancake lens with large FOV
US10451947B1 (en) 2016-10-31 2019-10-22 Facebook Technologies, Llc Apochromatic pancharatnam berry phase (PBP) liquid crystal structures for head-mounted displays
US10248001B1 (en) 2016-11-16 2019-04-02 Facebook Technologies, Llc Varifocal structure comprising a liquid lens structure in optical series with a liquid crystal lens in a head-mounted display
WO2018116080A1 (en) * 2016-12-20 2018-06-28 3M Innovative Properties Company Optical system
US10151961B2 (en) 2016-12-29 2018-12-11 Facebook Technologies, Llc Switchable bragg gratings for chromatic error correction of pancharatnam berry phase (PBP) components
US10866429B2 (en) 2017-01-24 2020-12-15 Gary Sharp Innovations, Llc Tunable color enhancement filter
US10712485B1 (en) 2017-02-28 2020-07-14 Facebook Technologies, Llc Composite optical coating on a curved optical surface
JP7263643B2 (en) 2017-03-08 2023-04-25 メタ プラットフォームズ テクノロジーズ, リミテッド ライアビリティ カンパニー Wide angle variable neutral density filter
US10451885B2 (en) 2017-03-28 2019-10-22 Facebook Technologies, Llc Multifocal system using pixel level polarization controllers and folded optics
WO2018191593A1 (en) 2017-04-13 2018-10-18 Sharp Gary D Chromatic polarization filtering that is input specific
WO2018213001A1 (en) 2017-05-17 2018-11-22 Facebook Technologies, Llc Liquid crystal cells for polarization rotation
CN111108428A (en) 2017-07-17 2020-05-05 加里夏普创新有限责任公司 Wide angle compensation of uniaxial retarder stacks
US10691198B1 (en) 2017-09-21 2020-06-23 Facebook Technologies, Llc Attenuation of Narcissus effect in pancake lens assembly
US10474229B1 (en) 2017-11-01 2019-11-12 Facebook Technologies, Llc Folded viewing optics with high eye tracking contrast ratio
US10678116B1 (en) 2017-11-09 2020-06-09 Facebook Technologies, Llc Active multi-color PBP elements
EP3710889B1 (en) 2017-11-17 2023-07-26 Meta Platforms Technologies, LLC Self-compensating liquid crystal retardation switch
US10845597B1 (en) 2017-11-27 2020-11-24 Facebook Technologies, Llc Pancake lenses using Fresnel surfaces
US10520772B1 (en) 2017-12-15 2019-12-31 Facebook Technologies, Llc Self-compensated liquid crystal polymer coatings on curved optical surface
US10598928B1 (en) 2017-12-21 2020-03-24 Facebook Technologies, Llc Light redirection structures for eye tracking systems
US10429927B1 (en) * 2018-01-18 2019-10-01 Facebook Technologies, Llc Eye tracking for a head mounted display including a pancake lens block
US11249355B2 (en) 2018-01-29 2022-02-15 Gary Sharp Innovations, Llc Color switch for reduced color cross-talk
WO2019148176A1 (en) 2018-01-29 2019-08-01 Sharp Gary D Hollow triple-pass optical elements
US10934381B2 (en) 2018-02-20 2021-03-02 Board Of Supervisors Of Louisiana State University And Agricultural And Mechanical College Composition and method of making two-way shape memory polymer based sealant
WO2019169170A1 (en) 2018-03-02 2019-09-06 Sharp Gary D Retarder stack pairs for polarization basis vector transformations
US11048075B1 (en) 2018-03-29 2021-06-29 Facebook Technologies, Llc Optical lens assemblies and related methods
US10609364B2 (en) 2018-04-06 2020-03-31 Facebook Technologies, Llc Pupil swim corrected lens for head mounted display
US10902820B2 (en) 2018-04-16 2021-01-26 Facebook Technologies, Llc Display device with dynamic resolution enhancement
WO2019209911A1 (en) 2018-04-24 2019-10-31 Lc-Tec Displays Ab Viewing direction independent single-layer, pixelated light dimming filter
US10670861B2 (en) 2018-06-04 2020-06-02 Facebook Technologies, Llc Optical assembly with waveplate configuration for ghost image reduction
US11002955B2 (en) 2018-06-07 2021-05-11 Facebook Technologies, Llc Reverse-order crossed pancake lens with index gradient structure
US10914953B1 (en) 2018-06-11 2021-02-09 Facebook Technologies, Llc Varifocal waveguide display using tunable lens
US10642048B2 (en) 2018-08-07 2020-05-05 Facebook Technologies, Llc Reflective circular polarizer for head-mounted display
US10495798B1 (en) 2018-08-07 2019-12-03 Facebook Technologies, Llc Switchable reflective circular polarizer in head-mounted display
US10545348B1 (en) 2018-08-16 2020-01-28 Facebook Technologies, Llc Transmission improvement for flat lens based AR/VR glasses
WO2020072635A1 (en) 2018-10-02 2020-04-09 Gary Sharp Innovations, Llc Polarization folded path device with complementary angle filtering
US10839609B2 (en) 2018-10-05 2020-11-17 Facebook Technologies, Llc Apparatus, systems, and methods for display devices including local dimming
AU2019358207A1 (en) 2018-10-12 2021-05-13 Gary Sharp Innovations, Inc. Polarization-based filters with angle-sensitive transmission
CN116088082A (en) 2018-11-02 2023-05-09 元平台技术有限公司 Compact polarization-based multipass optical architecture
US10600352B1 (en) 2018-12-04 2020-03-24 Facebook Technologies, Llc Display device with a switchable window and see-through pancake lens assembly
US10838214B2 (en) 2018-12-14 2020-11-17 Facebook Technologies, Llc Angle compensating lens and display
US10935790B2 (en) 2019-02-07 2021-03-02 Facebook Technologies, Llc Active flexible liquid crystal optical devices
JP2022526184A (en) 2019-04-11 2022-05-23 ゲイリー シャープ イノベーションズ リミテッド ライアビリティ カンパニー Polarization compensator for inclined surfaces
WO2021007354A1 (en) 2019-07-08 2021-01-14 Gary Sharp Innovations, Llc Compact polarization-based collimators with high contrast
US10890823B1 (en) 2019-10-18 2021-01-12 Facebook Technologies, Llc Pitch variable optical devices and systems containing the same

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