WAVEGUIDE COMBINER WITH AT LEAST ONE EMBEDDED FILM LAYER
20230044369 · 2023-02-09
Assignee
Inventors
Cpc classification
G02B27/144
PHYSICS
G02B2027/0118
PHYSICS
International classification
Abstract
A waveguide combiner includes an in-coupling area, a waveguide body, an out-coupling area and at least one film layer. The in-coupling area is configured to introduce a light beam. The waveguide body is configured to guide the light beam introduced by the in-coupling area. The out-coupling area is configured to output the light beam guided by the waveguide body. Said at least one film layer is embedded in at least one portion of the in-coupling area, the waveguide body and the out-coupling area. Said at least one film layer is configured to divide said at least one portion of the in-coupling area, the waveguide body and the out-coupling area into a plurality of layers, and the light beam is reflected by said at least one film layer or penetrates said at least one film layer between different layers of the plurality of layers.
Claims
1. A waveguide combiner, comprising: an in-coupling area, configured to introduce a light beam; a waveguide body, configured to guide the light beam introduced by the in-coupling area; an out-coupling area, configured to output the light beam guided by the waveguide body; and at least one film layer, embedded in at least one portion of the in-coupling area, the waveguide body and the out-coupling area, wherein said at least one film layer is configured to divide said at least one portion of the in-coupling area, the waveguide body and the out-coupling area into a plurality of layers, and the light beam is reflected by said at least one film layer or penetrates said at least one film layer between different layers of the plurality of layers.
2. The waveguide combiner of claim 1, wherein said at least one film layer comprises a reflective film layer located in the waveguide body, for allowing the light beam to be guided in one layer of the waveguide body.
3. The waveguide combiner of claim 2, wherein the reflective film layer is a patterned film layer configured to pass the light beam in a specific area of the waveguide body.
4. The waveguide combiner of claim 1, wherein said at least one film layer comprises a semi-reflective film layer located in the waveguide body, for allowing the light beam to be guided in one layer of the waveguide body or allowing the light beam to penetrate the semi-reflective film layer and reach another layer of the waveguide body.
5. The waveguide combiner of claim 4, wherein the semi-reflective film layer is a patterned film layer configured to pass the light beam in a specific area of the waveguide body.
6. The waveguide combiner of claim 1, wherein the waveguide body comprises at least one beam-folding zone overlapping said at least one film layer.
7. The waveguide combiner of claim 1, wherein the waveguide body comprises at least one beam-expanding zone overlapping said at least one film layer.
8. The waveguide combiner of claim 1, wherein the in-coupling area comprises a prism structure; and said at least one film layer comprises a semi-reflective film layer located in the prism structure, for allowing the light beam to penetrate the semi-reflective film layer and reach the waveguide combiner or allowing the light beam to be reflected in the prism structure.
9. The waveguide combiner of claim 8, wherein said at least one film layer further comprises a reflective film layer located in the waveguide body, for allowing the light beam to be guided in one layer of the waveguide body.
10. The waveguide combiner of claim 8, wherein said at least one film layer further comprises a semi-reflective film layer located in the waveguide body, for allowing the light beam to be guided in one layer of the waveguide body or allowing the light beam to penetrate the semi-reflective film layer and reach another layer of the waveguide body.
11. The waveguide combiner of claim 1, wherein the in-coupling area comprises a prism structure; and said at least one film layer comprises a patterned reflective film layer located in the prism structure, for passing the light beam in a specific area in the prism structure.
12. The waveguide combiner of claim 11, wherein said at least one film layer further comprises a reflective film layer located in the waveguide body, for allowing the light beam to be guided in one layer of the waveguide body.
13. The waveguide combiner of claim 11, wherein said at least one film layer further comprises a semi-reflective film layer located in the waveguide body, for allowing the light beam to be guided in one layer of the waveguide body or allowing the light beam to penetrate the semi-reflective film layer and reach another layer of the waveguide body.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0014] Please refer to
[0015] In the present embodiment, said at least one film layer 120 is one semi-reflective film layer embedded in the waveguide body 104 overlapping the out-coupling area 106. When the light beam 108 is incident on the semi-reflective film layer 120, the light beam 108 is allowed to be reflected to be guided in one layer of the waveguide body 104, or is allowed to penetrate the semi-reflective film layer 120 and reach another layer of the waveguide body 104. Through passing and reflecting the light beam 108 between different layers, the reflection paths of the light beams are increased, such that the light beam 108 undergoes an operation of exit-pupil expansion on the out-coupling area 106. In other words, three output light beams 109 are output from a position C, a position D and a position E. It should be noticed that an angle at which the light beam 108 enters the in-coupling area 102 is the same as an angle at which the output light beam 109 exits from the out-coupling area 106. In some embodiments, said at least one film layer 120 can be one reflective film layer located in the waveguide body 104, for allowing the light beam 108 to be guided in one layer of the waveguide body 104, such that the reflection paths of the light beams may be increased as well. Furthermore, in some other embodiment, said at least one film layer 120 can be a patterned film layer, such as a patterned reflective film layer or a patterned semi-reflective film layer, configured to pass the light beam in a specific area of the waveguide body 104.
[0016] According to above arrangement, said at least one film layer 120 may reflect the light beam introduced by the in-coupling area 102 or pass the light beam to a different layer, such that the reflection paths of the light beams may be increased. Through increasing the reflection path of the light beams guided in the waveguide combiner, the output light beams have improved brightness uniformity.
[0017] Please refer to
[0018] The film layer embedded in the prism structure may vary, depending upon actual design considerations. Please refer to
[0019] More film layers may be added to the waveguide combiner of the second embodiment. Please refer to
[0020] The waveguide combiner with film layer(s) that is proposed by the present invention may introduce more light beams and increase the reflection path of light beams. For example, the proposed waveguide combiner is divided into a plurality of layers by the film layer(s), such that the reflection paths of the light beams are increased because of the light beams being reflected more. Through increasing the reflection path of the light beams guided in the waveguide combiner, the output light beams have improved brightness uniformity.
[0021] Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.