As the information technology marketplace continues to push computers and networking systems towards ever greater performance, optical networks are being developed to handle the increased speeds and to provide the greater bandwidth desired for moving large amounts of data. Interconnecting the optical fibers and waveguides forming these advanced networks continues to be challenging, however, due to the inherent inefficiencies and the high sensitivity to alignment and fabrication errors found in current optical components. Systems and methods for routing optical signals between the optical fibers or waveguides that are less sensitive to optical component fabrication and placement errors, and which can provide for increased efficiency in routing the optical signal from one communications pathway to another, can be valuable.
a-5c together illustrate cross-sectional views of variations on the embodiments of
a-6c together illustrate cross-sectional views of variations on the embodiments of
a-7c together illustrate cross-sectional views of additional variations on the embodiments of
a illustrates a close-up schematic view of the optical fiber and holographic mirror of
b illustrates a close-up schematic view of the optical fiber and holographic mirror of
a and 15b together illustrate cross-sectional views of variations on the optical fiber and holographic mirror of
The following detailed description makes reference to the accompanying drawings, which form a part thereof and in which are shown, by way of illustration, various representative embodiments in which the invention can be practiced. While these embodiments are described in sufficient detail to enable those skilled in the art to practice the invention, it should be understood that other embodiments can be realized and that various changes can be made to the invention without departing from the spirit and scope of the present invention. As such, the following detailed description is not intended to limit the scope of the invention as it is claimed, but rather is presented for purposes of illustration, to describe the features and characteristics of the representative embodiments and to sufficiently enable one skilled in the art to practice the invention. Accordingly, the scope of the present invention is to be defined solely by the appended claims.
A system and method are provided for a holographic mirror for re-directing an optical signal between optical fibers or hollow-metal waveguides, and which can replace the optical mirrors, beam-splitters and optical gratings, etc., currently used for routing optical signals. The various representative embodiments of the holographic mirror described herein can allow for a more efficient, fabrication-error and misalignment-error tolerant system and method of routing optical signals between fibers or waveguides.
The simple mirrors, smooth-surfaced beamsplitters and optical gratings currently available in the optical networking industry have wide-angular distribution and poor directionality, both of which can lead to large optical losses. Furthermore, such mirrors and beamsplitters and gratings require high-precision manufacturing to maintain consistent optical performance, and are susceptible to errors in both fabrication and placement that can result in additional losses. In contrast, the holographic mirror can yield a collimated reflected light beam that can be coupled into a crossing fiber or waveguide with an efficiently as high as 99%.
The holographic mirror can also be applied to various optical components and in a wide variety of configurations. For example, in one representative embodiment the holographic mirror can be formed into the outer surface of a base or substrate that is embedded at the cross-section of a T- or X-junction between optical fibers or hollow-metal waveguides, and can re-direct an optical signal traveling within the fiber or waveguide towards another optical communications pathway. In another representative embodiment the holographic mirror can be formed directly into the outer surface of a translucent optical fiber, and can be used to re-direct an evanescent optical signal towards an adjacent but non-contacting optical communications pathway.
The plurality of discrete dielectric nano-structures 12 formed into the outer surface 16 of the base or substrate 14 can be three-dimensional bodies with dimensions and spacing 18 that have been configured to re-direct the optical signal using three-dimensional interference with a particular wavelength of light, rather than through total or partial reflection of the light beam. In contrast to the sheet-like layers, films and/or polished coatings that are used to create the simple mirrors and smooth-surfaced beamsplitters found in the prior art, each nano-structure can have an out-of-plane dimension 20 that is within an order of magnitude (or factor of 10) of one or both in-plane dimensions 22, such as the width and breadth of the nano-structure. In other words, each nano-structure can have a vertical height or depth that is up to 10× longer or 10× shorter than the horizontal width and breadth of the nano-structure. As a consequence of the three-dimensional aspect of the nano-structures, the form-factor of the nano-structures 12 can be analogous to a post 24 (if projecting outwardly from the base surface) or to a pit 26 (if projecting inwardly). In one aspect the out-of-plane dimension 20 of the post or pit can be substantially equal, or within a factor of 2, of one or both in-plane dimensions 22.
As shown in
As depicted with the holographic mirrors 46 and 50 illustrated in
As shown in cross-section in
The nano-structures can be built using any method of nano-structure fabrication known to one of skill in the art, including deposition, photolithography, mechanical machining or laser etching, etc. In one aspect the outwardly-directed dielectric posts can be nano-bubbles interspersed over the outer surface of the base. In another aspects the inwardly-directed pits 26, 56 illustrated in
a-7c illustrates a cross-sectional view of the nano-structures 62 forming holographic mirror 60, the predetermined spacing 18 between the individual nano-structures (or the size of the holes in the periodic hole array), can be optimized to re-direct a selected wavelength of the optical signal. For a given wavelength λ, the spacing d 18 between nano-structures 62 may be less than d=λ/2n where n in the optical index of the base 14. Furthermore, the height h or out-of-plane dimension 20 of the nano-structures 62 can be graded, so that in one aspect the height 20 of the nano-structures can vary gradually from h to h/10 from one side the holographic mirror 60 to the other.
In yet another embodiment of the holographic mirror 70 shown in
Illustrated in
In another representative embodiment the holographic mirror can be formed directly on the outer surface of a translucent optical fiber, and can be used to re-direct an evanescent optical signal towards an adjacent but non-contacting optical communications pathway. For instance, as shown in
The first optical fiber 110 and the second optical fiber 120 are shown together in
As shown in more detail in
The crescent-shaped optical elements 144 of
Each of the crescent-shaped optical elements 144 can be formed from a high-contrast dielectric material 30, such as metallic silver, that can efficiently interact with the incoming optical signal. Other high-contrast dielectric materials can also be used. Thus, the outwardly-directed walls 152 can be built up from the high-contrast dielectric material, while the inwardly-directed grooves 154 can be filled with the high-contrast dielectric material.
The predetermined spacing 150 between the individual crescent-shaped optical elements 144 can be optimized to re-direct a selected wavelength of the optical signal. For a given wavelength λ, the spacing d 150 between optical elements may be less than d=λ/2n, where n in the optical index of the material forming the outer layer 114 of the optical fiber 110. Furthermore, the height h 160 or out-of-plane dimension of the optical elements 144 can be graded, so that in one aspect the height of the crescent-shaped optical elements can vary gradually from d to d/10 from one side the holographic mirror to the other.
The foregoing detailed description describes specific representative embodiments. However, it will be appreciated that various modifications and changes can be made without departing from the scope as set forth in the appended claims. The detailed description and accompanying drawings are to be regarded as illustrative, rather than restrictive, and any such modifications or changes are intended to fall within the scope as described and set forth herein.
More specifically, while illustrative representative embodiments have been described herein, the present invention is not limited to these embodiments, but includes any and all embodiments having modifications, omissions, combinations (e.g., of aspects across various embodiments), adaptations and/or alterations as would be appreciated by those skilled in the art based on the foregoing detailed description. The limitations in the claims are to be interpreted broadly based on the language employed in the claims and not limited to examples described in the foregoing detailed description or during the prosecution of the application, which examples are to be construed as non-exclusive. For example, any steps recited in any method or process claims may be executed in any order and are not limited to the order presented in the claims. The term “preferably” is also non-exclusive where it is intended to mean “preferably, but not limited to.” Accordingly, the scope of the invention should be determined solely by the appended claims and their legal equivalents, rather than by the descriptions and examples given above.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US2009/041995 | 4/28/2009 | WO | 00 | 9/21/2011 |
Publishing Document | Publishing Date | Country | Kind |
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WO2010/126493 | 11/4/2010 | WO | A |
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