Field of the Disclosure
The technology of the disclosure relates to lens holder assemblies configured to support gradient index (GRIN) lens, wherein the lens holder assemblies may be employed in plugs, receptacles and the like for facilitating optical connections.
Technical Background
Benefits of optical fiber include extremely wide bandwidth and low noise operation. Because of these advantages, optical fiber is increasingly being used for a variety of applications, including, but not limited to, broadband voice, video, and data transmission as end-users require more bandwidth. Fiber optic networks employing optical fiber are used to deliver voice, video, and data transmissions to subscribers over both private and public networks. As optical cable assemblies begin to be utilized in consumer electronics applications for allowing higher data transfer speeds between electronic devices the limitations of conventional telecommunication cable assembly designs are realized. Although, telecommunication fiber optic networks often include separated connection points linking optical fibers to provide “live fiber” from one connection point to another connection point using cable assemblies, the needs and environment for consumer application cable assemblies are much different. In this regard, fiber optic equipment is located in data distribution centers, central offices, or other clean environments for supporting optical fiber interconnections do not typically experience the large number of mating cycles like will be required for consumer electronic applications. Moreover, telecommunication cable assemblies are high-precision products that are typically protected from dirt, debris and the like; whereas, consumer electronic devices will need to operate in ordinary environments where exposure to dirt and debris will be a common occurrence.
By way of example, conventional fiber optic connectors for telecommunications use a flat end-faced multi-fiber ferrules for facilitating multiple direct optical fiber-to-optical fiber connections between the fiber optic connector supporting the ferrule and other fiber optic connectors or other devices having an optical connection. In this regard, it is important that fiber optic connectors are designed to allow the end faces of the optical fibers disposed in the ferrule to be placed into contact or closely spaced with an optical connection or other optical fiber for light transfer. These conventional multi-fiber, fiber optic connectors used for the telecommunication applications require a time-consuming manufacturing process for preparing a precision surface for direct optical fiber-to-optical fiber mating. By way of example, after the optical fibers are secured so the optical fiber extends beyond the mating end face, the excess fiber is removed by laser cleaving and the remaining protruding fiber is mechanically polished using abrasives for obtaining a precision end face with a highly planar array for maintaining tight alignment of optical fibers between connectors. When these connectors are mated, the end faces of the fibers touch providing for low-loss across the optical interface, but precise polishing is required to obtain this type of mating geometry. This high precision polishing is costly and difficult since it is time-consuming requires equipment and consumables for polishing and multiple manufacturing steps. Moreover, this type of construction is not well suited for the large number of mating cycles that a consumer device application is expected to experience. Thus, conventional constructions and methods for making cable assemblies are not suitable for cable assemblies directed to consumer devices for these and other reasons.
Fiber optic connectors having lens holders are disclosed to facilitate optical connections for the transfer of light signals between devices. For example, optical fibers can be optically connected to another optical device, such as a light-emitting diode (LED), laser diode, or opto-electronic device, for light/signal transfer. As another example, optical fibers can be optically connected to other optical fibers through mated fiber optic connectors as desired. In any of these cases, it is important that the end face of an optically connected optical fiber be precisely aligned with the optical device or other optical fiber to avoid or reduce coupling loss of the signal. For example, the optical fiber is disposed through a portion of a lens holder body that precisely locates the optical fiber with relation to the fiber optic lens.
Gradient index (GRIN) lenses offer an alternative to precision polishing used in telecommunication based connectors that have optical fiber-to-optical fiber mating. GRIN lenses focus light through a precisely controlled radial variation of the lens material's index of refraction from the optical axis to the edge of the lens. The internal structure of this index gradient can dramatically reduce the need for high precision polishing and results in a simple, compact lens. This allows a GRIN lens with flat surfaces to collimate light emitted from an optical fiber or to focus an incident beam into an optical fiber. The GRIN lens can be provided in the form of a glass rod that is disposed in a lens holder as part of a fiber optic connector. The flat surfaces of a GRIN lens allow easy bonding or fusing of one end to an optical fiber disposed inside the fiber optic connector with the other end of the GRIN lens disposed on the ferrule end face. The flat surface on the end face of a GRIN lens can reduce aberrations, because the end faces can be polished to be planar to slightly inset with respect to the end face of the ferrule. The flat surface of the GRIN lens allows for easy cleaning of end faces of the GRIN lens by the end user, which is advantageous since the assembly must withstand large numbers of mating/unmating cycles. It is important that the lens holder assembly be designed with internal holders that place and secure the GRIN lenses in alignment with the desired angular accuracy (i.e., tilt) to avoid or reduce coupling loss.
Embodiments disclosed herein include translating gradient index (GRIN) lens holders employing groove alignment feature(s). Non-limiting examples of such optical connectors include plugs and receptacles. In one embodiment, the lens holder assembly contains one or more internal groove alignment features configured to secure the one or more GRIN lenses in the lens holder assembly. The groove alignment features are also configured to accurately align the end faces of the GRIN lenses in a quick, simple and reliable manner for consumer applications. In a plug embodiment, the translating lens holder assembly comprises slide portions that enable the lens holder assembly to translate on alignment pins within a connector housing. The slide portions are separated by bore relief zones that facilitate the cleaning of the pins and the depositing of debris (e.g., liquid, dust, etc.) in a benign location with respect to the lens holder assembly. The lens holder assemblies disclosed herein can be provided as part of an optical fiber ferrule and/or a fiber optic component or connector for making optical connections. The lens holder assembly may have a monolithic structure or have a cover as desired according to the concepts disclosed herein. A fiber optic connector containing the lens holder assemblies disclosed herein may be optically connected to one or more optical fibers in another fiber optic connector or to an optical device, such as a laser-emitting diode (LED), laser diode, vertical-cavity surface-emitting laser (VCSEL), or opto-electronic device for light transfer.
In this regard, in one embodiment, a lens holder assembly includes a lens holder body having a mating face, a first forward slide portion and a first rear slide portion disposed on a first side of the lens holder body, and a second forward slide portion and a second rear slide portion disposed on a second side of the lens holder body. The first forward slide portion is longitudinally aligned with the first rear slide portion such that the first forward slide portion is separated from the first rear slide portion by a first bore relief zone, and the second forward slide portion is longitudinally aligned with the second rear slide portion such that the second forward slide portion is separated from the second rear slide portion by a second bore relief zone. The at least one optical component is located at the mating face and configured to be optically coupled to a mated optical component.
In another embodiment, an optical connector includes a connector housing, a lens holder body, a first alignment pin and a second alignment pin. The lens holder body includes a mating face, at least one optical component within the lens holder body, a first forward slide portion, a second forward slide portion, a first rear slide portion, and a second rear slide portion. The first forward slide portion is longitudinally aligned with the first rear slide portion such that the first forward slide portion is separated from the first rear slide portion by a first bore relief zone. The second forward slide portion is longitudinally aligned with the second rear slide portion such that the second forward slide portion is separated from the second rear slide portion by a second bore relief zone. The at least one optical component is optically coupled to the mating face. The first alignment pin is disposed within the first forward slide portion and the first rear slide portion, and the second alignment pin is disposed within the second forward slide portion and the second rear slide portion such that the lens holder body translates longitudinally along an optical axis of the optical connector on the first alignment pin and the second alignment pin.
In yet another embodiment, an optical connector includes a connector housing, a lens holder assembly, a first alignment pin, a second alignment pin, and a recessed cover. The lens holder body includes a mating face, an internal chamber, a recessed floor disposed in the internal chamber, a first forward slide portion and a first rear slide portion disposed on a first side of the recessed floor, and a second forward slide portion and a second rear slide portion disposed on a second side of the recessed floor. The first forward slide portion is longitudinally aligned with first rear slide portion such that the first forward slide portion is separated from the first rear slide portion by a first bore relief zone. The second forward slide portion is longitudinally aligned with the second rear slide portion such that the second forward slide portion is separated from the second rear slide portion by a second bore relief zone. At least one groove alignment feature is disposed in the recessed floor of the internal chamber of the lens holder body. The at least one groove alignment feature is configured to support at least one GRIN lens disposed in the internal chamber and substantially align at least one end portion of the at least one GRIN lens with the mating face. The recessed cover is disposed in the internal chamber between the first forward slide portion and the second forward slide portion of the lens holder body, and between the first rear slide portion and the second rear slide portion. Of course, it is noted that the concept of the bore relief zone may be used independently from the recessed cover concept or other features as desired. The first alignment pin is disposed within the first forward slide portion and the first rear slide portion, and the second alignment pin is disposed within the second forward slide portion and the second rear slide portion such that the lens holder assembly translates longitudinally along an optical axis of the optical connector on the first alignment pin and the second alignment pin.
Additional features and advantages will be set forth in the detailed description which follows, and in part will be readily apparent to those skilled in the art from that description or recognized by practicing the embodiments as described herein, including the detailed description that follows, the claims, as well as the appended drawings.
It is to be understood that both the foregoing general description and the following detailed description present embodiments, and are intended to provide an overview or framework for understanding the nature and character of the disclosure. The accompanying drawings are included to provide a further understanding, and are incorporated into and constitute a part of this specification. The drawings illustrate various embodiments, and together with the description serve to explain the principles and operation of the concepts disclosed.
Reference will now be made in detail to the embodiments, examples of which are illustrated in the accompanying drawings, in which some, but not all embodiments are shown. Indeed, the concepts may be embodied in many different forms and should not be construed as limiting herein; rather, these embodiments are provided so that this disclosure will satisfy applicable legal requirements. Whenever possible, like reference numbers will be used to refer to like components or parts.
Embodiments disclosed herein include lens holder assemblies and optical connectors employing bore relief zones. Non-limiting examples of connectors include plugs, receptacles, and the like. The lens holder assemblies described herein are configured to translate within a housing on one or more alignment pins. In one embodiment, the lens holder assembly contains one or more internal groove alignment features configured to secure one or more gradient index (GRIN) lenses in the lens holder assembly. The groove alignment features are also configured to accurately align the end faces of the GRIN lenses within the lens holder so as to align with optical fibers internally and with a complimentary device externally. In another embodiment, the lens holder assembly comprises one or more refractive lens for optically coupling the lens holder assembly to a mated connector.
The lens holder assembly comprises pairs of slide portions that are each separated by a bore relief zone. The slide portions are configured to accept an alignment pin such that the lens holder assembly may translate within a connector housing of the optical connector. With this arrangement, the bore relief zones may provide for less contact surface area between the lens holder assembly and the alignment pins, thereby minimizing friction between these elements. The bore relief zones also provide for cleaning of the alignment pins, and the depositing of undesirable debris (e.g., liquids, dust, etc. that may enter the connector housing) in a benign location between the slide portions by wiping upon mating/unmating. Further, the bore relief zones enable the bores of the lens holder assembly to be fitted with one or more optional sleeves for reducing friction between the lens holder assembly and the alignment pins as desired.
The lens holder assemblies disclosed herein can be provided as part of an optical fiber ferrule and/or a fiber optic component or connector for making optical connections. A fiber optic connector containing the lens holder assemblies disclosed herein may be optically connected to one or more optical fibers in another fiber optic connector or to an optical device, such as a laser-emitting diode (LED), laser diode, vertical-cavity surface-emitting laser (VCSEL), or opto-electronic device for light transfer. As a non-limiting example, the lens holder assemblies disclosed herein can be provided as part of a plug or receptacle containing one or more optical fibers for establishing optical connections.
In this regard,
The lens holder body 40 of the illustrated embodiment includes two slide portion pairs having bores that are configured to accept first and second alignment pins 32A, 32B. The first slide portion pair is defined by a first forward slide portion 42A (having a bore 43A) and a first rear slide portion 44A (having a bore 45A) that are separated by a first bore relief zone 48A. The second slide portion pair is defined by a second forward slide portion 42B (having a bore 43B) and a second rear slide portion 44B (having a bore 45B) that are separated by a second bore relief zone 48B. The first forward slide portion 42A is longitudinally aligned with the first rear slide portion 44A for receiving an alignment pin. Likewise, the second forward slide portion 42B is longitudinally aligned with the second rear slide portion 44B. A front surface of the first and second forward slide portions 42A, 42B define a portion of the mating face 16. The first and second bore relief zones 48A, 48B are a region of the lens holder body 40 where material is removed such that the first and second alignment pins 32A, 32B are exposed and not enclosed by the lens holder body 40 in these regions or zones. The removed material reduces the friction force and provides cleaning by wiping during mating/unmating of the lens body holder as discussed herein.
The bores 43A, 43B, 45A, 45B are sized and configured to accept first and second alignment pins 32A, 32B. The diameter of the bores 43A, 43B, 45A, 45B should be such that the inner circumferences of the bores 43A, 43B, 45A, 45B contact the first and second alignment pins 32A, 32B.
The first and second bore relief zones 48A, 48B allow the bores 43A, 43B, 45A, 45B and the first and second alignment pins 32A, 32B to be cleaned as the lens holder assembly 10 is translated within a connector housing along an x-axis (e.g., connector housing 115 depicted in
More specifically, the plug 110 generally comprises a connector body 130 having a connector housing 115 extending from a front surface 111 of the connector body 130. The plug 110 further comprises optical fibers 120 disposed in a cable 122 secured to the connector body 130. The connector housing 115 defines a plug portion that may be inserted into a receptacle 170 (
The connector housing 115 defines an optical connector opening 121 that exposes a lens holder assembly 101 that is maintained in an enclosure within the connector housing 115. As depicted in
The GRIN lenses 118 focus light through a precisely controlled radial variation of the lens material's index of refraction from the optical axis to the edge of the lens. The internal structure of this index gradient can dramatically reduce the need for tightly controlled surface curvatures and results in a simple, compact lens. This allows the GRIN lenses 118 with flat surfaces to collimate light emitted from the optical fibers 120 or to focus an incident beam into the optical fibers 120. In this embodiment, as will be described in more detail below, the GRIN lenses 118 are provided in the form of glass rods that are disposed in the lens holder assembly 101. The flat end face surfaces of the GRIN lenses 118 allow simple optical coupling of ends of the GRIN lenses 118 to end portions of the optical fibers 120 inside the plug 110, with the other end of the GRIN lenses 118 disposed on a mating face 116 of the lens holder body 140, as illustrated in
Further, with continuing reference to
Referring now to
The lens holder body 140 of the illustrated embodiment includes two slide portion pairs having bores that are configured to accept first and second alignment pins 132A, 132B. The first slide portion pair is defined by a first forward slide portion 142A (having a bore 143A) and a first rear slide portion 144A (having a bore 145A) that are separated by a first bore relief zone 148A. The second slide portion pair is defined by a second forward slide portion 142B (having a bore 143B) and a second rear slide portion 144B (having a bore 145B) that are separated by a second bore relief zone 148B. The first forward slide portion 142A is longitudinally aligned with the first rear slide portion 144A. The second forward slide portion 142B is longitudinally aligned with the second rear slide portion 144B. The first and second bore relief zones 148A, 148B are a region of the lens holder body 140 where material is removed such that the first and second alignment pins 132A, 132B are exposed and not enclosed by the lens holder body 140 in these regions or zones.
The bores 143A, 143B, 145A, 145B are sized and configured to accept first and second alignment pins 132A, 132B, as described in detail below. The diameter of the bores 143A, 143B, 145A, 145B should be such that the inner circumference of the bores 143A, 143B, 145A, 145B contact the first and second alignment pins 132A, 132B so that the lens holder assembly 101 is positioned in the connector housing 115 within tolerances for optimal optical coupling between the plug 110 and a mated optical connector.
The first and second bore relief zones 148A, 148B allow the bores 143A, 143B, 145A, 145B and the first and second alignment pins 132A, 132B to be cleaned as the lens holder assembly 101 is translated within the connector housing 115 along the x-axis, which is advantageous for connectors requiring a large number of mating cycles. Debris, such as liquids, dust and the like that may have entered the connector housing 115, may be displaced such that it accumulates on the first and second alignment pins 132A, 132B between the first forward slide portion 142A and the first rear slide portion 144A (i.e., within the first bore relief zone 148A) and between the second forward slide portion 142B and the second rear slide portion 144B (i.e., within the second bore relief zone 148B), respectively. In other words, the first and second bore relief zones 148A, 148B may prevent debris from accumulating within the bores 143A, 143B, 145A, 145B. Such accumulation of debris within the bores 143A, 143B, 145A, 145B may inhibit the lens holder assembly 101 from translating within the connector housing 115 and may also inhibit optical alignment of the GRIN lenses 118 with lenses or optical components of a mated optical connector.
In the illustrated embodiment, optionally cylindrical sleeves 146A-146D are disposed within bores 143A, 143B, 145A, 145B to act as bearing elements for reducing friction between the lens holder assembly 101 and the first and second alignment pins 132A, 132B. The cylindrical sleeves 146A-146D may be made of any lubricious material to aid in the translation of the lens holder assembly 101 along the first and second alignment pins 132A, 132B. As an example and not a limitation, the cylindrical sleeves 146A-146B may be made of sintered bronze. It should be understood that cylindrical sleeves 146A-146D may also be utilized in embodiments having optical components other than GRIN lenses 118, such as the embodiment having refractive lenses 50 described in
A front surface of the first and second forward slide portions 142A, 142B partially defines the mating face 116 of the lens holder assembly 101. Accordingly, the front surfaces of the first and second forward slide portions 142A, 142B contribute toward the coupling and alignment of the GRIN lenses 118 with optical components of a mated optical connector. Further, the front surfaces of the first and second forward slide portions 142A, 142B can provide increased stability of the lens holder body 140 in the y-axis direction.
Although the
Referring specifically to the exploded view of
As illustrated in
With continuing reference to
Referring specifically now to
The first connector body half 130A also may comprise alignment pin recess and engagement features 135A, 135B. The alignment pin recess and engagement features 135A, 135B may be configured to securely retain the first and second alignment pins 132A, 132B within the connector body 130 and the connector housing 115. As a non-limiting example, the first and second alignment pins 132A, 132B may include a rear portion 133A, 133B having a width or diameter that is greater than the remainder of the first and second alignment pins 132A, 132B on which the lens holder assembly 101 translates. The rear portion 133A, 133B of the first and second alignment pins 132A, 132B may be disposed in the alignment pin recess and engagement features 135A, 135B so that the first and second alignment pins 132A, 132B are securely disposed within the connector body 130 and the connector housing 115 at predetermined positions. It should be understood that the first and second alignment pins 132A, 132B may be disposed within the connector body 130 by other means.
The first connector body half 130A may also comprise an optical fiber recess 136, which may provide a region within the connector body 130 for the optical fibers 120 to be positioned as the lens holder assembly 101 is translated. For example, the optical fibers 120 may be positioned between the first and second alignment pin recess and engagement features 135A, 135B in gap 138. As the lens holder assembly 101 is translated along the x-axis into the connector body, the optical fibers 120 are pushed through the gap 138 into the optical fiber recess 136. The first and second connector body halves 130A, 130B may also comprise notches 131C, 131D that accept a strain relief 123.
The plug 110 further comprises first and second bias members 134A, 134B that are disposed about the first and second alignment pins 132A, 132B between the lens holder body 140 and the first and second alignment pin recess engagement features 135A, 135B, respectively. The first and second bias members 134A, 134B, which are configured as compression springs in the illustrated embodiment, bias the lens holder assembly 101 forward such that the mating face 116 is positioned at the connector opening 121 when the plug 110 is not mated with a second optical connector. The first and second bias members 134A, 134B compress when the lens holder assembly 101 is translated back into the connector body 130 on the first and second alignment pins 132A, 132B.
Referring now to
The receptacle 170 further comprises a lens holder assembly 180 disposed within an enclosure defined by the receptacle housing 172 such that a gap 181 exists between an outer surface of the lens holder assembly 180 and an inner surface of the receptacle housing 172. As described in more detail below with reference to
GRIN lenses 178 are disposed within the lens holder assembly 180 such that end faces of the GRIN lenses 178 are planar to slightly inset with respect to the mating face 176 (e.g., within 0-50 μm). The GRIN lenses 178 should be arranged within the lens holder assembly 180 for alignment with the GRIN lenses 118 of the plug 110 when the plug 110 is mated with the receptacle 170.
The lens holder assembly 180 additionally comprises a first bore 179A and a second bore 179B adjacent to the GRIN lenses 178 and configured to receive the first and second pins 132A, 132B of the plug 110, respectively, when the plug 110 is inserted into the receptacle 170. As described in more detail below, the first and second pins 132A, 132B of the plug 110 and the first and second bores 179A, 179B of the receptacle 170 provide an optical alignment of the mated GRIN lenses 118, 178. The first and second bores 179A, 179 may also comprise an optional sleeve 177A, 177B as a bushing element to reduce friction between the first and second pins 132A, 132B and the inner surface of the first and second bores 179A, 179B. As described above with respect to the plug 110, the sleeve may be made out of a lubricious material, such as, but not limited to, sintered bronze.
Referring now to
The first and second pins 132A, 132B of the plug 110 are positioned within the first and second bores 179A, 179B, respectively, as the plug 110 is inserted into the receptacle 170. Referring specifically to
The mating face 116 of the plug 110 physically contacts the mating face 176 of the receptacle 170 when the plug 110 is fully engaged within the receptacle 170. The lens holder assembly 180 of the receptacle 170 may comprise a total internal reflective (TIR) surface 173 that is provided to reflect light to and from the GRIN lenses 178 disposed therein. Light can be received through lenses (not shown in
The plug 110 may be disengaged from the receptacle 170 by pulling the plug 110 away from the electronic device that incorporates the receptacle 170, such that the engagement features 113A, 113B and 175A, 175B disengage from one another. While the plug 110 is removed from the receptacle 170, the bias members 134A, 134B translate the lens holder assembly 101 back toward the connector opening such that the mating face 116 and GRIN lenses 118 may be user-accessible (e.g., for cleaning purposes).
As described above, the first and second bore relief zones 148A, 148B assist in cleaning the bores 143A, 143B, 145A, 145B of the first and second forward slide portions 142A, 142B and the first and second rear slide portions 144A, 144B, as well as the first and second alignment pins 132A, 132B such that debris does not accumulate between the inner surface of the bores 143A, 143B, 145A, 145B and the first and second alignment pins 132A, 132B. The translating motion of the lens holder assembly 101 along the first and second alignment pins 132A, 132B as depicted in
Referring now to
In addition to, or in lieu of, the bore relief zones 148A, 148B, the first and second alignment pins 132A, 132B and/or the inner surface of the bores 143A, 143B, 145A, 145B may have an optional profiled circumference such that debris within the bores 143A, 143B, 145A, 145B may accumulate in regions that are not in contact with the first and second alignment pins 132A, 132B. Referring now to
Referring now to
The individual optical fibers 222 of the optical fiber array 220A may be disposed within fiber bores 237 of a fiber holder 232. The size and shape of the fiber bores 237 are configured to securely accept and retain the individual optical fibers 222 of the optical fiber array 220A. The fiber bores 237 may comprise a first section 237A having a diameter configured to accept individual optical fibers having one or more outer layers, a second section 237B of a narrowing diameter, and a third section 237C (i.e., fiber end grooves) of a smaller diameter to retain a portion of the optical fibers 222 where the one or more outer layers have been removed to expose optical fiber ends 223. The optical fiber ends 223 are in contact or nearly in contact with an end face 235 of the GRIN lenses 234 such that the optical fibers 222 and the GRIN lenses 234 are optically coupled. The junction between the optical fiber ends 223 and the end face 235 of the GRIN lenses 234 may be provided by index matching or bonding. More specifically, an index matching gel, and/or index matching adhesive (e.g., epoxy or other) that has an index of refraction for index matching can be disposed in the internal chamber 149 to join the faces of the optical fiber ends 223 to the end faces 235 of the corresponding GRIN lenses 234. The recessed cover 102 may then be disposed in the open recess to seal off the internal chamber 149 and secure the GRIN lenses 118 inside the lens holder body 140.
The pitch of the optical fiber array 220A (i.e., an optical fiber pitch) is substantially equal to the pitch of the GRIN lens array 231A (i.e., a lens pitch) such that a transition between a pitch of the optical fiber array 220A and the GRIN lens array 231A is not needed. By way of example, if the GRIN lens array has a lens pitch of 400 microns, then the optical fibers of a ribbon have an optical fiber pitch of about 400 microns for matching the pitch and avoiding relatively large spacing transitions. This aids manufacturing and may also reduce stress and/or strain on the optical fibers.
It should now be understood that embodiments described herein are directed to lens holder assemblies and optical connectors employing groove alignment feature(s) and bore relief zones. The bore relief zones may assist in cleaning the alignment pins and bores of the lens holder assembly to facilitate translation of the lens holder assembly within the plug.
As non-limiting examples, the GRIN lenses disclosed herein may comprise a generally cylindrical glass member having a radially varying index of refraction, the glass member having a length such that the lens has a pitch of less than about 0.23. As used herein, the pitch length of the lens, Lo, is 2π/A; the fractional pitch, or, hereafter, pitch, is L/Lo=LA/2π, where L is the physical length of the lens. In various embodiments, the pitch is between about 0.08 and 0.23, such as, for example, lenses having pitches of 0.22, 0.21, 0.20, 0.19, 0.18, 0.17, 0.16, 0.15, 0.14, 0.13, 0.12, 0.11, 0.10, 0.09 and 0.08. Some embodiments relate to small diameter lenses, such as lenses having a diameter less than or equal to about one (1) mm, for example, 0.8 mm. In certain embodiments, lenses having a diameter less than about 1 mm are operative to produce a beam having a mode field diameter between about 350 μm and 450 μm when illuminated with a beam having a mode field diameter of about 10.4 μm.
Examples of optical devices that can interface with the GRIN lenses disclosed in the lens holder assemblies disclosed herein include, but are not limited to, fiber optic collimators, DWDMs, OADMs, isolators, circulators, hybrid optical devices, optical attenuators, MEMs devices, and optical switches.
Further, as used herein, it is intended that terms “fiber optic cables” and/or “optical fibers” include all types of single mode and multi-mode light waveguides, including one or more optical fibers that may be upcoated, colored, buffered, ribbonized and/or have other organizing or protective structure in a cable such as one or more tubes, strength members, jackets or the like. The optical fibers disclosed herein can be single mode or multi-mode optical fibers. Likewise, other types of suitable optical fibers include bend-insensitive optical fibers, or any other expedient of a medium for transmitting light signals. An example of a bend-insensitive, or bend resistant, optical fiber is ClearCurve® Multimode fiber commercially available from Corning Incorporated. Suitable fibers of this type are disclosed, for example, in U.S. Patent Application Publication Nos. 2008/0166094 and 2009/0169163, the disclosures of which are incorporated herein by reference in their entireties.
Many modifications and other embodiments of the embodiments set forth herein will come to mind to one skilled in the art to which the embodiments pertain having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. Therefore, it is to be understood that the description and claims are not to be limited to the specific embodiments disclosed and that modifications and other embodiments are intended to be included within the scope of the appended claims. It is intended that the embodiments cover the modifications and variations of the embodiments provided they come within the scope of the appended claims and their equivalents. Although specific terms are employed herein, they are used in a generic and descriptive sense only and not for purposes of limitation.
This application is a continuation of International Application No. PCT/US12/54059 filed on Sep. 7, 2012, which claims the benefit of priority to U.S. Application No. 61/568,951 filed on Dec. 9, 2011, and U.S. Application No. 61/533,986 filed on Sep. 13, 2011, the content of which is relied upon are incorporated herein by reference in their entirety.
Number | Name | Date | Kind |
---|---|---|---|
4781431 | Wesson et al. | Nov 1988 | A |
5163107 | Garriss | Nov 1992 | A |
5168537 | Rajasekharan et al. | Dec 1992 | A |
5333225 | Jacobowitz et al. | Jul 1994 | A |
5548677 | Kakii et al. | Aug 1996 | A |
5917976 | Yamaguchi | Jun 1999 | A |
5918976 | Hashimoto et al. | Jul 1999 | A |
6056448 | Sauter et al. | May 2000 | A |
6272272 | Ford | Aug 2001 | B1 |
6530696 | Ueda et al. | Mar 2003 | B1 |
6633700 | Bellman et al. | Oct 2003 | B2 |
6668119 | Matsumoto et al. | Dec 2003 | B2 |
6823109 | Sasaki et al. | Nov 2004 | B2 |
7269317 | Blauvelt et al. | Sep 2007 | B2 |
7331720 | McColloch | Feb 2008 | B1 |
7543994 | McColloch | Jun 2009 | B2 |
7553091 | McColloch | Jun 2009 | B2 |
7887243 | Abel et al. | Feb 2011 | B2 |
8277130 | Nishimura et al. | Oct 2012 | B2 |
8449205 | Little et al. | May 2013 | B2 |
RE44664 | McColloch | Dec 2013 | E |
8651749 | Dainese, Jr. et al. | Feb 2014 | B2 |
8774577 | Benjamin et al. | Jul 2014 | B2 |
8781273 | Benjamin et al. | Jul 2014 | B2 |
8757893 | Isenhour et al. | Sep 2014 | B1 |
9022669 | de Jong et al. | May 2015 | B2 |
9069142 | Fortusini et al. | Jun 2015 | B2 |
9151900 | Benjamin et al. | Oct 2015 | B2 |
9151912 | de Jong et al. | Oct 2015 | B2 |
9201201 | Charbonneau-Lefort et al. | Dec 2015 | B2 |
9261651 | Benjamin et al. | Feb 2016 | B2 |
9304265 | Isenhour et al. | Apr 2016 | B2 |
9435917 | DeMeritt et al. | Sep 2016 | B2 |
20020031301 | Sasaki et al. | Mar 2002 | A1 |
20020064347 | Mertz et al. | May 2002 | A1 |
20020168135 | Dautartas et al. | Nov 2002 | A1 |
20020172474 | Kim et al. | Nov 2002 | A1 |
20030034438 | Sherrer et al. | Feb 2003 | A1 |
20030113071 | Kim et al. | Jun 2003 | A1 |
20030113077 | Xu et al. | Jun 2003 | A1 |
20030128437 | Sato et al. | Jul 2003 | A1 |
20030201462 | Pommer et al. | Oct 2003 | A1 |
20030210873 | Moretti | Nov 2003 | A1 |
20040005124 | Gallup et al. | Jan 2004 | A1 |
20040081405 | Stevens et al. | Apr 2004 | A1 |
20040109646 | Anderson et al. | Jun 2004 | A1 |
20060039655 | Wilson | Feb 2006 | A1 |
20060045421 | Baets et al. | Mar 2006 | A1 |
20060140544 | Morimoto et al. | Jun 2006 | A1 |
20060154884 | Buchwald | Jul 2006 | A1 |
20060245694 | Chen et al. | Nov 2006 | A1 |
20070147733 | Matsumura et al. | Jun 2007 | A1 |
20080095501 | McColloch | Apr 2008 | A1 |
20080095506 | McColloch | Apr 2008 | A1 |
20080166094 | Bookbinder et al. | Jul 2008 | A1 |
20090154884 | Chen et al. | Jun 2009 | A1 |
20090169163 | Abbott, III et al. | Jul 2009 | A1 |
20090213894 | Grapov et al. | Aug 2009 | A1 |
20090252455 | Ohta et al. | Oct 2009 | A1 |
20100028563 | Ota | Feb 2010 | A1 |
20100135618 | Howard et al. | Jun 2010 | A1 |
20110064357 | Chang | Mar 2011 | A1 |
20110091167 | Nishimura | Apr 2011 | A1 |
20110116746 | Chen | May 2011 | A1 |
20110150399 | Sabano et al. | Jun 2011 | A1 |
20110229077 | Fortusini et al. | Sep 2011 | A1 |
20110255825 | Ko et al. | Oct 2011 | A1 |
20110317959 | Ohta et al. | Dec 2011 | A1 |
20120027346 | Castagna et al. | Feb 2012 | A1 |
20120093462 | Childers et al. | Apr 2012 | A1 |
20120155803 | Benjamin et al. | Jun 2012 | A1 |
20120163754 | Benjamin et al. | Jun 2012 | A1 |
20120189252 | Bhagavatula et al. | Jun 2012 | A1 |
20120177327 | DeMeritt et al. | Jul 2012 | A1 |
20120227346 | Tsambasis | Sep 2012 | A1 |
20120251045 | Budd et al. | Oct 2012 | A1 |
20120321249 | DeMeritt et al. | Dec 2012 | A1 |
20120328245 | Lin | Dec 2012 | A1 |
20140003767 | de Jong et al. | Jan 2014 | A1 |
20140143996 | Bhagavatula et al. | May 2014 | A1 |
20140178010 | de Jong et al. | Jun 2014 | A1 |
20140185991 | de Jong et al. | Jul 2014 | A1 |
20140308002 | Benjamin et al. | Oct 2014 | A1 |
20140308003 | Benjamin et al. | Oct 2014 | A1 |
20160202422 | de Jong et al. | Jul 2016 | A1 |
Number | Date | Country |
---|---|---|
199898138 | Jul 2001 | AU |
2373226 | Aug 2002 | CA |
101828137 | Sep 2010 | CN |
101828137 | Sep 2010 | CN |
102122035 | Jul 2011 | CN |
102122035 | Jul 2011 | CN |
102147508 | Aug 2011 | CN |
102147508 | Aug 2011 | CN |
102082342 | Nov 2013 | CN |
19932907 | Feb 2001 | DE |
0393829 | Mar 1990 | EP |
0760488 | Mar 1997 | EP |
0860720 | Aug 1998 | EP |
1237021 | Sep 2002 | EP |
1447695 | Aug 2004 | EP |
2545617 | Nov 1984 | FR |
2097550 | Nov 1982 | GB |
2359901 | Sep 2001 | GB |
57076509 | May 1982 | JP |
57139704 | Aug 1982 | JP |
57158824 | Sep 1982 | JP |
63-174004 | Jul 1988 | JP |
63174004 | Jul 1988 | JP |
1988293510 | Nov 1988 | JP |
2001004863 | Jan 2001 | JP |
2004219478 | Aug 2004 | JP |
2007041222 | Feb 2007 | JP |
2007163969 | Jun 2007 | JP |
2011116955 | Jun 2011 | JP |
2011116955 | Jun 2011 | JP |
4742429 | Aug 2011 | JP |
199734176 | Sep 1997 | WO |
WO9734176 | Sep 1997 | WO |
200070381 | Nov 2000 | WO |
WO0070381 | Nov 2000 | WO |
2001011409 | Feb 2001 | WO |
2002056076 | Jul 2002 | WO |
2002057826 | Jul 2002 | WO |
WO02056076 | Jul 2002 | WO |
WO02057826 | Jul 2002 | WO |
2003076993 | Sep 2003 | WO |
2006108024 | Oct 2006 | WO |
2013086117 | Jun 2013 | WO |
2013086127 | Jun 2016 | WO |
Entry |
---|
Patent Cooperation Treaty International Search Report, Application No. PCT/US2012/054059, dated May 3, 2013, 8 pages. |
Chanclou et al; “Design and Demonstration of a Multicore Single-Mode Fiber Coupled Lens Device”; Optics Communications; 233; (2004) 333-339. |
CN2012800642479 Office Action dated Apr. 17, 2015. |
CN2012800647985 Search Report dated Apr. 23, 2015. |
Cusworth et al; “Angular Tilt Misalignment Loss at a Grin Rod Lens Coupler”; Applied Optics, vol. 25, No. 11; Jun. 1, 1986; pp. 1775-1779. |
Emkey et al; “Analysis and Evaluation of Graded-Index Fiber-Lenses”; Journal of Lightwave Technology, vol. LT5, No. 9, Sep. 1987, pp. 1156-1164. |
Gilsdorf et al; “Single-Mode Fiber Coupling Effieciency With Graded-Index Rod Lenses”; Applied Optics, vol. 33, No. 16, Jun. 1, 1994 pp. 3440-3445. |
Gradient-Index Lenses, Optical Components; www.cvimellesgriot.com. |
International Search Report and Written Opinion of the International Searching Authority; PCT/US2012/068159 dated Jul. 4, 2013; 20 Pages. |
International Search Report of the International Searching Authority; PCT/US2012/054054; dated Nov. 28, 2012. |
International Search Report of the International Searching Authority; PCT/US2012/068144 dated Jul. 4, 2013. |
Nakagawa et al; “Lens-Coupled Laser Diode Module Integrated on Silicon Platform”; Journal of Lighwave Technology, vol. 14, No. 6, Jun. 1996; pp. 1519-1523. |
Palais; “Fiber Coupling Using Graded-Index Rod Lenses”; Applied Optics, vol. 19, No. 12, Jun. 15, 1980, pp. 2011-2018. |
Senior et al; “Misalignment Losses at Multimode Graded-Index Fiber Splices and Grin Rod Lens Couplers”; Applied Optics, vol. 24, No. 7; Apr. 1, 1985; pp. 977-983. |
Tomlinson; “Applications for Grin-Rod Lenses in Optical Fiber Communication Systems”; Applied Optics; vol. 19, No. 7, Apr. 1, 1980; pp. 1127-1138. |
“Zickar et al; ”“MEMS Compatible Micro-Grin Lenses for Fiber to Chip Coupling of Light”“; Optics Express, vol. 14, No. 10, May 2006; pp. 4237-4249”. |
CN2012800647985 Office Action dated Apr. 23, 2015. |
CN2012800434902 Search Report dated Feb. 16, 2015. |
International Search Report and Written Opinion of the International Searching Authority; PCT/US2012/054059 dated May 3, 2013; 29 Pages. |
Zickar et al; “MEMS Compatible Micro-Grin Lenses for Fiber to Chip Coupling of Light”; Optics Express, vol. 14, No. 10, May 2006; pp. 4237-4249. |
Chinese Search Report, Application No. 2012800434902, dated Feb. 16, 2015, 2 pages. |
Chinese Office Action, Application No. 2012800434902, dated Mar. 2, 2015. |
European Communication, Application No. 12774325.9, dated Apr. 24, 2014. |
PCT International Search Report, Application No. PCT/US2012/054059, dated May 3, 2013. |
Number | Date | Country | |
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20140185991 A1 | Jul 2014 | US |
Number | Date | Country | |
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61568951 | Dec 2011 | US | |
61533986 | Sep 2011 | US |
Number | Date | Country | |
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Parent | PCT/US2012/054059 | Sep 2012 | US |
Child | 14197645 | US |