COMPACT OPTICAL MODULE
20220140571 · 2022-05-05
Assignee
Inventors
Cpc classification
H01S5/4093
ELECTRICITY
H01S5/4012
ELECTRICITY
H01S5/0071
ELECTRICITY
G02B26/101
PHYSICS
International classification
H01S5/40
ELECTRICITY
Abstract
A compact optical package includes an RGB laser unit containing red, green, and blue laser diodes within a single package, with three lenses adjacent the RGB laser unit to collimate red, green, and blue laser light emitted by the red, green, and blue laser diodes. A beam combiner combines the red, green, and blue laser light into a single RGB laser beam and also outputs a lower power feedback beam. The compact optical package also includes a movable mirror apparatus, and a fixed folding mirror upon which the single RGB laser beam output by the beam splitter impinges and reflects the single RGB laser beam toward the movable mirror apparatus. The movable mirror apparatus directs the single RGB laser beam through an exit window and to scan the single RGB laser beam in a scan pattern to form at least one desired image on a target.
Claims
1. An optical package, comprising: a laser unit containing one or more laser diodes within a single package; one or more lenses adjacent the laser unit and configured to collimate laser light emitted by the one or more laser diodes of the laser unit; a beam combiner configured to combine the laser light from the one or more laser diodes into a single laser beam and to also output a lower power feedback beam; a movable mirror apparatus; a fixed folding mirror upon which the single laser beam output by the beam combiner impinges and which is configured to reflect the single laser beam toward the movable mirror apparatus; and wherein the movable mirror apparatus is configured to direct the single laser beam through an exit window and to scan the single laser beam in a scan pattern to form at least one desired image on a target adjacent the optical package.
2. The optical package of claim 1, wherein the laser unit contains red, green, and blue laser diodes within a single package that lases to generate red, green, and blue laser light that is initially shone through a prism within the laser unit and which exit the prism to impinge upon the one or more lenses; wherein the one or more lenses comprise first, second, and third lenses upon which the red, green, and blue lasers impinge; and wherein the single laser beam is a RGB laser beam.
3. The optical package of claim 2, wherein the red, green, and blue laser diodes are each formed within respective dies contained within the single package of the laser unit; and wherein the respective die into which the red, green, and blue laser diodes are formed are separated from one another by free space within the laser unit.
4. The optical package of claim 2, wherein the movable mirror apparatus includes a horizontal mirror upon which the RGB laser beam, as reflected by the folding mirror, impinges, wherein the horizontal mirror reflects the RGB laser beam toward a vertical mirror that reflects the RGB laser beam out an exit window in the optical package.
5. The optical package of claim 4, wherein the horizontal mirror is driven at resonance and the vertical mirror is driven linearly.
6. The optical package of claim 4, wherein the vertical mirror is arranged such that the RGB laser beam exits the exit window at a desired keystone angle.
7. The optical package of claim 1, further comprising a photodiode receiving the low power feedback beam.
8. The optical package of claim 1, wherein the beam combiner comprises a single beam splitter unit arranged such that the laser light emitted by the one or more laser diodes enters into outputs of the beam splitter, such that the low power feedback beam exits from another output of the beam splitter, and such that the single laser beam exists from the input of the beam splitter.
9. The optical package of claim 1, wherein the beam combiner comprises first, second, and third discrete dichroic beam combiners spaced apart from one another.
10. An augmented reality package, comprising: a printed circuit board containing laser driver circuitry and mirror driver circuitry; a compact optical package mechanically connected to the printed circuit board and electrically connected to the laser driver circuitry and mirror driver circuitry; wherein the compact optical package comprises: an RGB laser unit containing red, green, and blue laser diodes within a single package, the RGB laser unit electrically connected to the laser driver circuitry; three lenses adjacent the RGB laser unit and configured to collimate red, green, and blue laser light emitted by the red, green, and blue laser diodes of the RGB laser unit; a beam combiner configured to combine the red, green, and blue laser light into a single RGB laser beam and to also output a lower power feedback beam; a movable mirror apparatus electrically connected to the mirror driver circuitry; a fixed folding mirror upon which the single RGB laser beam output by the beam splitter impinges and configured to reflect the single RGB laser beam toward the movable mirror apparatus; and wherein the movable mirror apparatus is configured to, under control of the mirror driver circuitry, direct the single RGB laser beam through an exit window and to scan the single RGB laser beam in a scan pattern to form at least one desired image on a target of the augmented reality package.
11. The augmented reality package of claim 10, wherein the red, green, and blue laser diodes are each formed within respective dies contained within the single package of the RGB laser unit; and wherein the respective die into which the red, green, and blue laser diodes are formed are separated from one another by free space within the RGB laser unit.
12. The augmented reality package of claim 10, wherein the movable mirror apparatus includes a horizontal mirror upon which the RGB laser beam, as reflected by the folding mirror, impinges, wherein the horizontal mirror reflects the RGB laser beam toward a vertical mirror that reflects the RGB laser beam out an exit window in the compact optical package toward the target.
13. The augmented reality package of claim 12, wherein the horizontal mirror is driven at resonance and the vertical mirror is driven linearly.
14. The augmented reality package of claim 13, wherein the vertical mirror is arranged such that the RGB laser beam exits the exit window at a desired keystone angle.
15. The augmented reality package of claim 10, further comprising a photodiode receiving the low power feedback beam.
16. The augmented reality package of claim 10, wherein the beam combiner comprises a single beam splitter unit arranged such that the red, green, and blue laser light enters into outputs of the beam splitter, such that the low power feedback beam exits from another output of the beam splitter, and such that the single RGB laser beam exists from the input of the beam splitter.
17. The augmented reality package of claim 10, wherein the beam combiner comprises first, second, and third discrete dichroic beam combiners spaced apart from one another.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020]
[0021]
[0022]
[0023]
[0024]
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[0029]
DETAILED DESCRIPTION
[0030] The following disclosure enables a person skilled in the art to make and use the subject matter disclosed herein. The general principles described herein may be applied to embodiments and applications other than those detailed above without departing from the spirit and scope of this disclosure. This disclosure is not intended to be limited to the embodiments shown, but is to be accorded the widest scope consistent with the principles and features disclosed or suggested herein.
[0031] A compact optical module 10 is now described with reference to
[0032] Details of the compact RGB laser package 12 are shown in
[0033] Returning to
[0034] A 4:1 beam splitter 16 is carried within the housing 11 adjacent the alignment lenses 14a, 14b, and 14c. This beam splitter 16 is a single rectangularly shaped unit formed of three square units, each square unit being comprised of two triangular prisms having their bases affixed to one another. The overall dimensions of the beam splitter may be, for example, 6 mm in length, 2 mm in depth, and 2.5 mm in height. Naturally, these dimensions are just examples, and the beam splitter 16 may instead of other dimensions.
[0035] The prisms of the beam splitter 16 that serve to reflect the laser beams 30 and 31 are arranged so as to reflect as close to 100% of those beams as possible along a trajectory out the right side of the beam splitter 36 to help form the combined RGB laser beam 33, while the prisms of the beam splitter 16 that serve to reflect the laser beam 32 is arranged so as to reflect about 98% of the laser beam 32 out the right side of the beam splitter 36 to form the combined RGB laser beam 33, while passing about 2% of the laser beam 32 through to reach a photodiode 18 used to provide feedback for the system driving the laser diodes 12a, 12b, and 12c of the RGB laser package 12.
[0036] Note that while the beam splitter 16 here is used to combine the laser beams 30, 31, and 32 to form the RGB laser beam 33, the beam splitter 16 is still technically a 4:1 beam splitter, as if a beam 33 were to be input into the right side (the output) of the beam splitter 16, the beam splitter would split it to produce the beams 32 (exiting toward the lens 14c and toward the photodiode 18), 31, and 30. Thus, despite its use as a beam combiner, the component 16 is indeed a beam splitter 16.
[0037] A vertical mirror 20, horizontal mirror 24, and folding mirror 22 are adjacent the beam splitter 16, and collectively are used to reflect the RGB laser beam 33 out an exit window 26 on a housing 11 and onto a display surface. Note that the position of the folding mirror 22 is fixed during operation, while the horizontal mirror 24 is driven to oscillate at its resonance frequency and the vertical mirror 22 is driven linearly. Therefore, the purpose of the folding mirror 22 is simply to “fold” the path of the RGB laser beam 33 to strike the horizontal mirror 24, while the purpose of the horizontal mirror 24 and vertical mirror 22 is to scan the RGB laser beam 33 across the display surface in a scan pattern designed to reproduce the desired still or moving images. The overall dimensions of the vertical mirror 22 may be, for example, 7.94 mm in length, 2.34 mm in depth, and 0.67 mm in height; the overall dimensions of the horizontal mirror 24 may be, for example, 4.44 mm in length, 2.94 mm in depth, and 0.67 mm in height. Naturally, the vertical mirror 22 and horizontal mirror 24 may have other dimensions, and the given dimensions are just examples.
[0038] Note that, instead of the beam splitter 16, as shown in
[0039] Turning now to
[0040] Sample angles for this path taken by the RGB laser beam 33 may be seen in
[0041] In some instances, it may be desired for the RGB laser beam 33 to exit the exit window with keystone. For example, in
[0042] As another example, in
[0043] From the above, it is to be noticed that the distance between the centers of the horizontal mirror 24 and vertical mirror 20 changes as the keystone angle changes. The larger the keystone, the larger the distance between the centers of the horizontal mirror 24 and vertical mirror 20, and vice versa.
[0044] A perspective view of the compact optical module 10 may be seen in
[0045] A potential augmented reality unit 40 is shown in
[0046] This augmented reality unit 40 may be installed into a pair of augmented reality glasses 60, as shown in
[0047] While the disclosure has been described with respect to a limited number of embodiments, those skilled in the art, having benefit of this disclosure, will appreciate that other embodiments can be envisioned that do not depart from the scope of the disclosure as disclosed herein. Accordingly, the scope of the disclosure shall be limited only by the attached claims.