Embodiments of the present disclosure generally relate to optical devices. Specifically, embodiments of the present disclosure relate to optical devices with one or more optical component circuits.
Optical devices may be used to manipulate the propagation of light. One example of an optical device is a flat optical device, such as a metasurface. Another example of an optical device is a waveguide combiner, such as an augmented reality waveguide combiner. Optical devices in the visible and near-infrared spectrum may require structures, such as nanostructures, disposed on a substrate surface having macroscale dimensions. However, processing transparent substrates to form optical devices is both complex and challenging as an emerging technology. The complexity and challenges of processing transparent substrates present particular needs for improving safety and system longevity. For example, it may be desirable to promptly prevent at least one optical device and a user from exposure to light if the optical device may be potentially damaged. Accordingly, what is needed in the art are optical devices integrated with optical component circuits that instantly switch off light sources and/or light detectors of the optical component circuits if the optical device may be potentially damaged.
In one embodiment, an optical device is provided. The optical device includes a plurality of structures disposed over a first surface of a substrate of the optical device. The optical device further includes an electrically conductive aperture surrounding and integrated with the plurality of structures. The electrically conductive aperture is disposed over the first surface or over a second surface opposing the first surface. The electrically conductive aperture includes a first aperture contact point and a second aperture contact point. The first aperture contact point is operable to be connected to at least one of a light source or a light detector. The second aperture contact point is operable to be connected to a power source. The power source is operable to be connected to the light source or the light detector at a power source contact point.
In another embodiment, an optical device is provided. The optical device includes a plurality of structures disposed over a first surface of a substrate of the optical device. The optical device further includes an electrically conductive aperture surrounding and integrated with the plurality of structures. The electrically conductive aperture is disposed over the first surface or over a second surface opposing the first surface. The electrically conductive aperture includes a first aperture contact point and a second aperture contact point. The first aperture contact point is operable to be connected to at least one of a light source or a light detector. The second aperture contact point is operable to be connected to a power source. The power source is operable to be connected to the light source or the light detector at a power source contact point such that power is disconnected from the light source and the light detector when at least a portion of the electrically conductive aperture is broken.
In yet another embodiment, a device is provided. The device includes one or more optical devices. Each optical device includes a plurality of structures disposed over a first surface of a substrate and an electrically conductive aperture. The electrically conductive aperture surrounds the plurality of structures and is disposed over the first surface or over a second surface opposing the first surface. The electrically conductive aperture includes a first aperture contact point and a second aperture contact point. The device further includes at least one of a light source or a detector connected to the first aperture contact point. The device further includes a power source connected to the second aperture and connected to the light sources or the light detectors at a power source contact point.
So that the manner in which the above recited features of the present disclosure can be understood in detail, a more particular description of the disclosure, briefly summarized above, may be had by reference to embodiments, some of which are illustrated in the appended drawings. It is to be noted, however, that the appended drawings illustrate only typical embodiments of this disclosure and are therefore not to be considered limiting of its scope, for the disclosure may admit to other equally effective embodiments.
To facilitate understanding, identical reference numerals have been used, where possible, to designate identical elements that are common to the figures. It is contemplated that elements disclosed in one embodiment may be beneficially utilized on other embodiments without specific recitation.
Embodiments described herein generally relate to optical devices with one or more optical component circuits. The optical devices with the one or more optical component circuits described herein prevent the optical devices and user from exposure to light from light sources and/or light detectors when the conductive pathway of the optical component circuits is interrupted. Embodiments of the optical devices described herein include a plurality of structures disposed over a first surface of a substrate, and an electrically conductive aperture surrounding and integrated with the plurality of structures, the electrically conductive aperture is disposed over the first surface or over a second surface opposing the first surface.
The substrate 101 may also be selected to transmit a suitable amount of light of a desired wavelength or wavelength range, such as one or more wavelengths from about 100 nanometers (nm) to about 3000 nm. Without limitation, in some embodiments, the substrate 101 is configured such that the substrate 101 transmits greater than or equal to about 50% to about 100%, of an infrared (IR) to ultraviolet (UV) region of the light spectrum. The substrate 101 may be formed from any suitable material, provided that the substrate 101 can adequately transmit light in a desired wavelength or wavelength range and can serve as an adequate support for the one or more optical devices 100 described herein. In some embodiments, which may be combined with other embodiments described herein, the material of the substrate 101 has a refractive index that is relatively low, as compared to the refractive index of a structure material of the plurality of structures 112a, 112b of the one or more optical devices 100. In other embodiments, which can be combined with other embodiments described herein, the material of substrate 101 has a refractive index that is similar to the refractive index of the structure material of the plurality of structures 112a, 112b of the one or more optical devices 100.
Substrate selection may include substrates of any suitable material, including, but not limited to, amorphous dielectrics, non-amorphous dielectrics, crystalline dielectrics, silicon oxide, polymers, and combinations thereof. In some embodiments, which may be combined with other embodiments described herein, the substrate 101 includes a transparent material. In one embodiment, which may be combined with other embodiments described herein, the substrate 101 is transparent with an absorption coefficient smaller than 0.001. Suitable examples may include an oxide, sulfide, phosphide, telluride or combinations thereof. In one example, the substrate 101 includes silicon (Si), silicon dioxide (SiO2), silicon nitride (SiN), fused silica, quartz, silicon carbide (SiC), germanium (Ge), silicon germanium (SiGe), indium phosphide (InP), gallium arsenide (GaAs), gallium nitride (GaN), sapphire, high-index transparent materials such as high-refractive-index glass, or combinations thereof.
Embodiments described herein provide for one or more optical devices 100, such as the optical devices 100A, 100B shown in
In one embodiment, the optical devices 100A, 100B include a plurality of structures 112a, 112b and an aperture 114a, 114b. The aperture 114a, 114b surrounds, e.g., is disposed adjacent to, the plurality of structures 112a, 112b. In one embodiment, which may be combined with other embodiments described herein, the aperture 114a, 114b (shown in
The structures 112a, 112b may be nanostructures having sub-micron dimensions, e.g., nano-sized dimensions, such as critical dimensions 116 (shown in
In one embodiment, which may be combined with other embodiments described herein, the structure material of the structures 112a, 112b includes non-conductive materials, such as dielectric materials. The dielectric materials may include amorphous dielectrics, non-amorphous dielectrics, and crystalline dielectrics. Examples of the dielectric materials include, but are not limited to, silicon-containing materials, such as, Si, silicon nitride (Si3N4), silicon oxynitride, and silicon dioxide. The silicon may be crystalline silicon, polycrystalline silicon, and/or amorphous silicon (a-Si). In another embodiment, which may be combined with other embodiments described herein, the structure material of the structures 112a, 112b includes metal-containing dielectric materials. Examples of metal-containing dielectric materials include, but are not limited to, titanium dioxide (TiO2), zinc oxide (ZnO), tin dioxide (SnO2), aluminum-doped zinc oxide (AZO), fluorine-doped tin oxide (FTO), cadmium tin oxide (Cd2SnO4), zinc tin oxide (SnZnO3), and niobium oxide (Nb2O5) containing materials.
As described, the aperture 114a, 114b surrounds, e.g., is disposed adjacent to, the plurality of structures 112a, 112b. In one embodiment, which may be combined with other embodiments described herein, the optical devices 100A, 100B may include one or more additional apertures in addition to the aperture 114a, 114b. The aperture 114a, 114b has a width 118. In one embodiment, which may be combined with other embodiments described herein, the width 118 is the same throughout the aperture 114a, 114b. In another embodiment, which may be combined with other embodiments described herein, the width 118 of at least one portion of the aperture 114a, 114b is different. In one embodiment, which may be combined with other embodiments described herein, the width 118 is about 10 μm to about 1000 μm. In one embodiment, which can may be combined with other embodiments described herein, the aperture 114a, 114b forms a closed loop. In another embodiment, which may be combined with other embodiments described herein, the aperture 114a, 114b contains an opening. The aperture 114a, 114b includes one or more aperture materials. The one or more aperture materials include at least one conductive material. In one embodiment, which may be combined with other embodiments described herein, the one or more aperture materials may also include an opaque material such that one or more wavelengths in the range of about 100 to about 3000 nm are not transmitted. The opaque aperture 114a, 114b may prevent stray light (i.e., light of an impinging beam being greater than the surface area the structures 112a, 112b) from degrading the functionality of the optical devices 102a, 102b. In another embodiment, which may be combined with other embodiments described herein, the one or more aperture materials may also include a transparent material such that one or more wavelengths in the range of about 100 to about 3000 nm are transmitted. The one or more aperture materials, i.e., material of the apertures, include, but are not limited to, chromium (Cr), titanium nitride (TiN), a-Si, titanium (Ti), titanium oxide (TiO2), indium tin oxide (ITO), gold (Au), copper (Cu), tungsten (W), and aluminum (Al) containing materials.
The optical component circuit 102 includes one of one or more light sources 106. In another embodiment, which may be combined with other embodiments described herein, the optical component circuit 102 also includes one or more light detectors 108. The one of one or more light sources 106 and/or one or more light detectors 108 may be positioned in a propagation direction of the one or more optical devices 100. The one or more light sources 106 include, but are not limited to, a display (e.g., a microdisplay) and/or a light emitting device. The display includes, but is not limited to, a liquid crystal display (LCD) or any other display operable with the one or more optical devices 100. The light emitting device includes, but is not limited to, a light-emitting diode (LED), a laser, a vertical-cavity surface-emitting laser (VCSEL), a non-VCSEL laser, or any emitter of light. The one or more light detectors 108 include, but are not limited to, a complementary metal-oxide-semiconductor (CMOS) detector or any other light detector operable with the one or more optical devices 100.
The one or more light sources 106 and, in some embodiments, the one or more light detectors 108 of the optical component circuit 102 are electrically connected to the aperture 114a, 114b at a first aperture contact point 120a and are electrically connected to a power source 104 at a power source contact point 122. The one or more light sources 106 and, in some embodiments, the one or more light detectors 108 are electrically connected via one or more wires 110. The power source 104 includes, but is not limited to, a battery, actuator, or any other power source that is operable to provide power to the one or more light sources 106 and, in some embodiments, the one or more light detectors 108. The power source 104 is electrically connected via the wires 110. The power source 104 is electrically connected to the aperture 114a, 114b at a second aperture contact point 120b to complete the optical component circuit 102. The optical component circuit 102 provides for a conductive pathway 124 for current to flow from the power source 104 through the aperture 114a, 114b and to the one or more light sources 106 and, in some embodiments, the one or more light detectors 108.
As shown in
In summation, optical devices 100 with the one or more optical component circuits 102 are provided. The optical devices 100 with the one or more optical component circuits 102 described herein prevent the user from exposure to light when the conductive pathway 124 is interrupted via aperture breakage, for example, from the user dropping the substrate 101, or from the user dropping the optical device 100A, 100B. Aperture breakage resulting in the interruption of the conductive pathway 124 prevents current from being provided to the one or more light sources 106 and/or one or more light detectors 108 to prevent (e.g., automatically prevent) light exposure to the user.
While the foregoing is directed to embodiments of the present disclosure, other and further embodiments of the disclosure may be devised without departing from the basic scope thereof, and the scope thereof is determined by the claims that follow.
This application claims the benefit of U.S. Provisional Patent Application No. 63/054,037, filed on Jul. 20, 2020, the contents of which are herein incorporated by reference.
Number | Name | Date | Kind |
---|---|---|---|
7115525 | Abatchev et al. | Oct 2006 | B2 |
8189263 | Wang et al. | May 2012 | B1 |
8715516 | Sakamoto et al. | May 2014 | B2 |
20020044345 | Takeuchi et al. | Apr 2002 | A1 |
20040190338 | Lee | Sep 2004 | A1 |
20050233487 | Liu et al. | Oct 2005 | A1 |
20120314991 | Kang et al. | Dec 2012 | A1 |
20140241661 | Chen et al. | Aug 2014 | A1 |
20150219806 | Arbabi et al. | Aug 2015 | A1 |
20160252727 | Mack et al. | Sep 2016 | A1 |
20180172988 | Ahmed et al. | Jun 2018 | A1 |
20180188542 | Waldern et al. | Jul 2018 | A1 |
20180217186 | Pfefferlein et al. | Aug 2018 | A1 |
20180231702 | Lin et al. | Aug 2018 | A1 |
20180284428 | Guenter | Oct 2018 | A1 |
20180292676 | Alexander | Oct 2018 | A1 |
20180306425 | Massmann et al. | Oct 2018 | A1 |
20180335629 | Cheng et al. | Nov 2018 | A1 |
20180337743 | Jou et al. | Nov 2018 | A1 |
20190137762 | Hu | May 2019 | A1 |
20190137777 | Yang et al. | May 2019 | A1 |
20190146151 | Meister et al. | May 2019 | A1 |
20190154877 | Capasso et al. | May 2019 | A1 |
20200011514 | Fu | Jan 2020 | A1 |
Number | Date | Country |
---|---|---|
109196387 | Jan 2019 | CN |
109343219 | Feb 2019 | CN |
109799611 | May 2019 | CN |
2010504631 | Feb 2010 | JP |
2020047874 | Mar 2020 | JP |
2018528446 | Oct 2020 | JP |
1020110070571 | Jun 2011 | KR |
20180113472 | Oct 2018 | KR |
200741328 | Nov 2007 | TW |
2018142339 | Aug 2018 | WO |
2018204856 | Nov 2018 | WO |
Entry |
---|
International Search Report and Written Opinion for PCT/US2020/033428 dated Oct. 20, 2020. |
Taiwan Office Action issued to Application No. 109118434 dated Mar. 2, 2021. |
International Searh Report/ Written Opinion issued to PCT/US2021/040866 dated Oct. 29, 2021. |
Japanese Office Action issued to Patent Application No. 2023-503995 dated Jan. 9, 2024. |
India Examination Report issued to Application No. 202147061439 dated Apr. 18, 2022. |
Japanese Office Action issued to Application No. 2021-571873 dated Feb. 15, 2023. |
Chinese Office Action issued to Application No. 202080053854.X dated Jan. 28, 2023. |
European Search Report issued to Patent Application No. 20817680.0 dated May 26, 2023. |
European Search Report issued to Application No. 20817990.3 dated Jun. 15, 2023. |
Japanese Office Action issued to Patent Application No. 2021-571873 dated Jul. 25, 2023. |
China Office Action issued to Patent Application No. 202080053854.X dated Aug. 17, 2023. |
European Search Report issued to Patent Application No. 20817990.3 dated Sep. 15, 2023. |
Supplemental European Search Report issued to Patent Application No. 20817990.3 dated Oct. 4, 2023. |
Korean Office Action issued to Patent Application No. 10-2021-7043146 dated Jan. 24, 2024. |
Number | Date | Country | |
---|---|---|---|
20220018998 A1 | Jan 2022 | US |
Number | Date | Country | |
---|---|---|---|
63054037 | Jul 2020 | US |