Embedded Reflective Eyepiece
20170242258 · 2017-08-24
Inventors
Cpc classification
G02B27/286
PHYSICS
International classification
Abstract
An embedded reflective eyepiece includes an optical lens, a beam splitter and reflective coating at a convex surface of the optical lens and a circular polarizing reflector surface having a concave surface of the optical lens. A method for forming a magnified image includes emitting circularly polarized light from a display source, at least partially refracting the circularly polarized light across a convex surface of a beam splitter reflective coating across a lens, at least partially reflecting refracted circularly polarized light internally off a concave circularly polarized reflector surface of the lens, and at least partially reflecting a reflected circularly polarized light internally off of the beam splitter reflective coating at the convex surface.
Claims
1. A reflective collimating eyepiece, comprising: a) an optical lens, including i) a concave surface, and ii) a convex surface opposite the concave surface; b) a beam splitter reflective coating at the convex surface; and c) a circular polarizing reflector at the optical lens, whereby circularly polarized light from a circularly polarized light source is refracted at the beam splitter reflective coating and reflected at the circular polarizing reflector, and then reflected at the beam splitter reflective coating to form a beam of opposite circularly polarized light that is transmitted across the circular polarizing reflector, thereby collimating and magnifying the image of the circularly polarized light source.
2. The eyepiece of claim 1, wherein the optical lens is a singlet.
3. The eyepiece of claim 2, wherein the circular polarizing reflector includes a combination of a ¼ wave plate and a linear polarizing reflector.
4. The eyepiece of claim 3, further including an absorptive linear polarizer proximate to the concave surface, whereby light emitted from the optical lens at the concave surface is transmitted across the absorptive linear polarizer.
5. The eyepiece of claim 2, wherein the circular polarizing reflector includes a cholesteric liquid crystal film.
6. The eyepiece of claim 1, further including a display source opposite the reflective coating, wherein the display source directs predominantly circularly polarized light to the beam splitter reflective coating.
7. The eyepiece of claim 6, wherein the display source includes a non-polarized light source, and further including a polarizing filter between the non-polarized light source and the beam splitter reflective coating, and a ¼ wave plate between the polarizing filter and the beam splitter reflective coating, wherein non-polarized light emitted by the display source is polarized by the polarizer and ¼ wave plate, whereby the beam-splitter reflective coating receives circularly polarized light from the display source.
8. The eyepiece of claim 1, wherein the optical lens is a doublet that includes a first piece defining the convex surface, and a second piece defining the concave surface, the first and the second pieces together defining a planar interface between the convex and concave surfaces.
9. The eyepiece of claim 8, wherein at least one of the concave and the convex surfaces is aspheric.
10. The eyepiece of claim 9, wherein the circular polarizing reflector includes a ¼ wave plate at the interface between the first piece and the second piece, and a linearly polarizing reflector at the concave surface.
11. The eyepiece of claim 9, wherein at least one of the convex surface and the concave surface is aspheric.
12. The eyepiece of claim 1, further including an absorption polarizer at the concave surface that reduces reflection of light from an eye observing the image off the circular polarizing reflector surface of the eyepiece.
13. The eyepiece of claim 1, wherein the circularly polarizing reflector conforms to the concave surface.
14. The eyepiece of claim 13, wherein the circular polarizing reflector includes at least one member selected from the group consisting of a cholesteric liquid crystal film, a combination of a ¼ wave plate and a wire grid polarizer, and a combination of a ¼ wave plate film and a linear polarizing reflector.
15. A reflective collimating eyepiece, comprising: a) an optical lens, including i) a concave surface, and ii) a convex surface opposite the concave surface; b) a beam splitter reflective coating at the convex surface; c) a circular polarizing reflector at the concave surface, whereby circularly polarized light from a circularly polarized light source is refracted at the beam splitter reflective coating and reflected at the circular polarized reflector, and then reflected at the beam splitter reflective coating to form a beam of opposite circularly polarized light that is transmitted across the circular polarized reflector, thereby collimating and magnifying the image of the display source; and d) a display source opposite the beam splitter reflective coating, wherein the display source directs predominately circularly polarized light to the beam splitter reflective coating.
16. A reflective collimating eyepiece, comprising: a) an optical lens, including i) a first piece defining a convex surface, ii) a second piece defining a concave surface, the first and second pieces together defining an interface between the converse and concave surfaces; b) a ¼ wave plate at the interface between the first piece and the second piece; c) a beam splitter coating at the convex surface; and d) a circular polarizing reflector at the optical lens, whereby circularly polarized light from a circularly polarized light source is refracted at the beam splitter reflective coating and reflected at the circular polarizing reflector, and then reflected at the beam splitter reflective coating to form a beam of opposite circularly polarized light that is transmitted across the circular polarizing reflector, thereby collimating and magnifying the image of the circular polarized light source.
17. A method for forming a magnified image, comprising the steps of: a) emitting circularly polarized light from a circularly polarized light source; b) at least partially refracting the circularly polarized light across a convex surface of a beam splitter reflective coating and across an optical lens; c) at least partially reflecting the refracted circularly polarized light internally off of a concave circular polarized reflector of the optical lens; d) at least partially reflecting the reflected circularly polarized light internally off of the beam splitter reflective coating at the convex surface, whereby a beam of opposite circular polarization of the circularly polarized light is formed, thereby causing the beam of opposite circularly polarized light to be transmitted across the circular polarized reflector, thereby collimating and magnifying the image of the circularly polarized light source.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] The patent or application file contains at least one drawing executed in color. Copies of this patent or patent application publication with color drawings will be provided by the Office upon request and payment of the necessary fee.
[0015]
[0016]
[0017]
[0018]
[0019] The same number in different figures represents the same item.
DETAILED DESCRIPTION OF THE INVENTION
[0020] The invention generally is directed to a reflective collimating eyepiece, and to a method of forming a magnified and collimated image. “Embedded” is a reference to the single monolith lens nature of the optical design with the reflective elements embedded or incorporated on the two external surfaces.
[0021] In one embodiment of the invention, shown in
[0022] In one embodiment, reflective eyepiece 10 includes circularly polarized light source 32 opposite beam splitter reflective coating 18, wherein circular polarized light source 22 directs predominantly circularly polarized light 20 to beam splitter reflective coating 18. In one embodiment, circular polarized light source includes non-polarized light source 32, and a polarizing filter 34 between non-polarized light source 32 and beam splitter reflective coating 18. In this embodiment, polarizing filter 34 can be, for example, a circular polarizer, or a ¼ wave plate combined with a polarizing film, that is located between beam splitter reflective coating 18 and non-polarized light source 32, wherein non-polarized light emitted by non-polarized light source 32 is polarized, so that beam splitter reflective coating 18 receives circularly polarized light from circularly polarized light source 32. Polarizing filter 34 can be any film that filters unpolarized light to generate a circular polarized output, such as a film that combines an absorptive polarizer film and ¼ wave birefringent film. Polarizing filter 34 first filters the light to make it linearly polarized and then converts the linearly polarized light to circular with a properly oriented ¼ wave film.
[0023]
[0024] In one specific embodiment, unpolarized light from non-polarized light source 39 is polarized by linear polarizing filter 41 and the polarized light is then circularly polarized by ¼ wave plate 43 and at least partially refracted at coating 48 of convex surface 46. Circularly polarized light 40 is at least partially refracted across convex surface 46 of optical lens 44 at beam splitter reflective coating 48 and across optical lens 44. At least a portion (or most if not substantially all) of refracted circularly polarized light 50 is reflected internally off of concave circular polarized reflector surface 52 at concave surface 54 of optical lens 44. At least a portion of reflected circularly polarized light 56 is reflected internally off of beam splitter reflective coating 48 at convex surface 46, whereby beam 58 of opposite circular polarization of circularly polarized light is formed, thereby causing beam 58 of opposite circularly polarized light to be transmitted across circular polarizing reflector 52. The combination of the refraction and the reflection at convex 46 and concave 54 surfaces, respectively, of optical lens 44, thereby collimate and magnify the image of display source 42.
[0025]
[0026] In one embodiment, ¼ wave plate 86 is interposed between the flat surfaces 78, 80 between lens components 74, 76. ¼ waveplate 86 converts the circularly polarized light that passes/diffracts through beam splitter reflective coating 88 back into linearly polarized light that is reflected from curved linear polarizer 87 at concave surface 84. The linear polarized light reflected from curved linear polarizer 87 at concave surface 84 converts to circular polarized light at ¼ waveplate 86 and then is partially reflected at beam splitter reflective coating 88, where the reflected portion of the light is converted to opposite handedness The oppositely handed reflected light from beam splitter reflective coating 88 is then converted to linear polarized light at ¼ waveplate 86 and substantially, or essentially completely is transmitted across linear polarizer 87 at concave surface 84. This embodiment has the advantage, for example, of facilitating fabrication of reflective eyepiece, by allowing for use of a flat ¼ waveplate in construction. Beam splitter reflective coating 88 is at convex surface 82.
[0027] Absorptive linear polarizer 90 is located between eye 92 of a user of reflective collimating eyepiece 70 and curved reflecting surface 116 of eyepiece 70. The presence of absorptive linear polarizer 90 eliminates substantial reflection of light from eye 92 off of concave surface 84 that would be visible to the user, otherwise.
[0028] In another embodiment, the invention is a method for forming a magnified image that includes emitting circularly polarized light from display source 102, as schematically shown in
[0029] Also it would also be possible to construct the eyepiece with the beam splitter coating on the concave surface and the polarizing reflector on the convex surface. This would require that an absorptive polarizer and a ¼ waveplate combination be located between the eye and the eyepiece to eliminate first pass transmission from the beamsplitter coating.
[0030] The relevant portions of all references cited herein are incorporated by reference in their entirety.
[0031] While this invention has been particularly shown and described with references to example embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the scope of the invention encompassed by the appended claims.