CA1200709A - Concentric core optical fiber coupler - Google Patents
Concentric core optical fiber couplerInfo
- Publication number
- CA1200709A CA1200709A CA000431772A CA431772A CA1200709A CA 1200709 A CA1200709 A CA 1200709A CA 000431772 A CA000431772 A CA 000431772A CA 431772 A CA431772 A CA 431772A CA 1200709 A CA1200709 A CA 1200709A
- Authority
- CA
- Canada
- Prior art keywords
- core
- fiber
- optical fiber
- concentric
- bonding
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Expired
Links
Classifications
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/24—Coupling light guides
- G02B6/26—Optical coupling means
- G02B6/28—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals
- G02B6/2804—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals forming multipart couplers without wavelength selective elements, e.g. "T" couplers, star couplers
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S359/00—Optical: systems and elements
- Y10S359/90—Methods
Abstract
ABSTRACT
A method for constructing and the resulting structural configuration of an input coupler for a concentric core optical fiber comprises removing the outer protective material of a concentric core optical fiber to expose the outer core back a predetermined distance from the end which includes the inter-mediate protective material or cladding and the inner core.
A plurality of single core optical fibers are stripped so that their respective cores are exposed whereupon they are bonded to the exposed outer core by a transparent index matching epoxy, which bonding is located at the transition region where the exposed outer core begins and the outer cladding ends. The outer end of the concentric core fiber element including the intermediate protective material and the inner core is cleaved and at least one other single core optical element is cleaved and bonded in end to end abutting relationship with the inner core by transparent index matching epoxy. Additionally, opaque material is located on either side of the bonds to attenuate any optical energy not coupled between the cores.
A method for constructing and the resulting structural configuration of an input coupler for a concentric core optical fiber comprises removing the outer protective material of a concentric core optical fiber to expose the outer core back a predetermined distance from the end which includes the inter-mediate protective material or cladding and the inner core.
A plurality of single core optical fibers are stripped so that their respective cores are exposed whereupon they are bonded to the exposed outer core by a transparent index matching epoxy, which bonding is located at the transition region where the exposed outer core begins and the outer cladding ends. The outer end of the concentric core fiber element including the intermediate protective material and the inner core is cleaved and at least one other single core optical element is cleaved and bonded in end to end abutting relationship with the inner core by transparent index matching epoxy. Additionally, opaque material is located on either side of the bonds to attenuate any optical energy not coupled between the cores.
Description
~Z0~70g ~his invention relates generally to fiber optics and more particularly to a coupler for coupling single core optical fibers to a concen-tric core op-tical fiber.
Fiber optics is currently finding wide application in communications equipment because of its ability to convey modulated liyht energy and due to the bandwidth considerations involved, a gxeat deal of information can be transmitted on a relatively small size optical fiber. While single core optical fibers have conventionally been used, concentric core fibers have been shown to be potentially attractive for use in intrusion resistant communication links. As is well known, in concentric core optical fibers, two separate and distinct coaxial inner and outer light conducting cores exist, being separated from one another by cladding materlal so that optical power can be transmitted via the ;~ores with minimal crosstalk and attenuation.
Por many intrusion resistant configurations, it becomes necessary to couple separate signals from separate light sources into the two cores independently. ~o do this requires an input coupler capable of low crosstalk and low insertion losses.
One known coupler for concentric core fibers comprises the use of two small step index fibers with core diameters equal to or less than the respective core thicknesses which are precisely aligned to the two concentric fiber cores and bonded into place by means of an epoxy. Although the crosstalk in such con~iguration is found to be within acceptable tolerance, considerable improvement is needed to improve the u-tility of the device in an intrusion resistant system. Although the insertion loss of such a device has been found to be tolerable, the small size of the input fibers, however, dictates that only a few microwatts of optical power can be coupled into either `r ~
~L2(~7~D~
of the concentric core fibers. Additionally, large portions of the concentric cores, particularly the outer core, are not even illuminated and the capability of launching tens of micro-watts from light emitting sources, such as diodes, is absent.
Accordingly, it is an object of the present invention to provide an improvement in optical fiber couplers.
Still another object of the present invention is to provide an improvement in concentric core optical fiber couplers which overcomes the limitation of crosstalk and input power capability.
These and other objects of the present invention are accomplished by the fabrication method and resulting structure wherein a plurality of single core input fibers are bonded to the outer core of a coaxial core op-tical fiber at a transition re~ion where the outer core is exposed. The bonding is accomplished by transparent epoxy having an index of a fraction matching the cores. Also, opaque light absorbing material is also applied adjacent the location of bonding for absorbing extraneous optical power not coupled between the outer core and the plurality of single core input fibers. Additionally, at least one single core input fiber is aligned with the inner core of the concentrlc core fiber and bonded in end to end relationship therewith. Another region of opaque material is provided ad~acent the lcoation of the latter bonding to atten-u~te any excess power that is not launched into the inner core but may be ultimately coupled into the outer core and thus be a source of crosstalk.
Particular embodiments of the invention wi~ll be described in conjunction with the accompanying drawings in which:
Figure 1 is a diagram illustrative of a convçntional lZ~)70~
prlor art concentric core ~iber op-tical input coupler;
Figures 2A through 2F are a set of diagrams illustra-tive of the fabrication sequence of a concentric core fiber optical lnput coupler in accordance with the subject invention;
Figure 3 is a cross sectional view of Figure 2A taken along the lines 3-3 thereof; and Figure 4 is a cross sectional view of Figure 2s taken along the lines 4-4 thereof.
Referring now to the drawings and more particularly to Figure 1, there is disclosed what is considered to be a conventional prior art concentric core fiber optic input coupler. As shown, reference numeral 10 denotes a concentric core optical fiber which is comprised of coaxial inner and outer cores 12 and 14 which are respectively adapted to conduct light energy applied thereto. The inner and outer cores are separated by an intermediate annular layer of cladding 16 for the inner core, while a second annular layer of cladding 18 is formed over the outer core 14. The concentric core fiber 10 is Eabricated employing standard internal chemical vapor deposition (C~D) techniques. The cores 12 and 14 are typically comprised of germania doped silicon while the cladding layers 16 and 18 are comprised of boron doped silica. Although not shown, the concentric core fiber 10 may and usually does include a layer of plastic coating over the cladding layer 18. In order to couple energy into the concentric core fiber 10, one end of the fiber is cleaved to expose the inner and outer cores 12 and 14 whereupon two small step index single core fibers 20 and 22 also have their ends cleaved, whereupon they are precisely aligned and epoxied into place in abutti~g end to end relationship such as at the locations 24 and 26.
Referring now to a concentric core optical fiber coupler in acco~dance with the subject invention, reference to Figure 2A i5 illu~trative of the first step in fabricating ah improved concentric core fiber input coupler and consists in taking a concentric core iber 10 having a plastic coating 28 and stripping the plastic coating off for a predetermined length, such as 3 inches, from one end 30 to expose the ou-ter core cladding 18. The end 30 is cleaved to provide a generally flat end surface 31 to expose both the inner and outer cores 12 and 14 as well as the inner core cladding 16 as shown in Figure 3.
~ ext the outslde cladding layer 18 is stripped to expose the outer core 14, This is shown in Figure 2B where an area 32 of a lenyth,for example 2 inches,at the far end 30 of the fiber is stripp~d, for example, by the use of a hydro-fluoric acid solution with a controlled etch time. This will expose the outer core 14 while leaving a length 34 o~ outer core cladding visible with a transition region 35 therebetween.
While the use of hydrofluoric acid comprises the preferred method of stripping the cladding 18, any number of mechanical means may be devised. In order to determine when the outer core 14 is reached during the etching step, however, it can be determined by transmitting visible optical power down the con-centric core fiber ~rom the opposite end, not shown. When the outer core i5 reached, a signi~icant amount o~ power that is coupled in the outer core 14 will be noticeably scattered out into the etching solution.
Having exposed the length 32 of the outer core 14 as shown in Figura 2B, a plurallty of single core coupling fi~ers 36l ... 36n are prepared for bonding to the exposed outer core 14 of the concentric core fiber 10. The input coupling ~;~oo7g:)~
fibers 361 ... 36n are typically comprised of components having respective glass or silica cores 381 38n and plastic clad silica coatings 401 ... 40n. As shown in Figure 2C, the coating is stripped from one end of the fibers 36~ 36 for a length 39, for example, of one inch. With removal of the plastic coating 401 ... 40n, the cores 381 38n are cleaned and cleaved. In the subject invention, a total number of six to ten fibers 36 are required.
Assuming a number of ten, once the ten plastic clad silica fibers 361 ... 361o are prepared, they are epoxy bonded around the periphery of the outer core 14 at the transition region 36 as shown in Figuxe 2D providing epoxy region 41 at about one inch, for example, from the end of the plastic coa*ing 28 of the concentric core fiber as well as the ends of the respective coatings 40l ... 40lo of the single core fibers ~ ~ 361 ... 36lo. Choice of the epoxy compound to bond the cores 38l ... 381o to the outer core 14 is cxitical because it must be optically clear and have an index of refraction which closely matches that of the core materials, otherwise a significant amount of optical power will be lost which may inadvertently be coupled to the inner core 12. The space between the epoxy region 41 and the plastic coating 28 of the concentric core fiber and consisting of the outer cladding 18 is next covered with an opaque strippiDg compound as indicated by reference numeral 44 for absorbing extraneous optical power that is not coupled~into the outer core 14 from the single core fibers bonded thereto and coupled to sources of optical power, not shown.
Next a single core fiber 48, as shown in Figure 2E, is stripped, cleaned and cleaved so that it can be attached to the inner core 12 at the end 31 of the concentric core 70~
fiber 10. The fiber 48, for ex~mple, cornprises a step index input fiber having a light conducting core 50 covered by a coating 52. The core 50 is precisely aligned in end to end abutting relationship with the inner core 12 where it is bonded thereto by a transparent epoxy compound at a region shown by reference numeral 54. Again the epoxy compound is adap-ted to match the refractive index of the two cores 12 and 50. In aligning the core 50 to the inner core 12 prior to the epoxy bonding step, a micropositioner and a microscope can be utilized in conjunction with a source of visible optical power such as a laser. Light from the laser when coupled to the opposite end of one of the fibers is used to facilitate the alignment and positioning so that maximum coupling efficiency will be realized. As noted, the inpu-t fiber 48 comprises a step index fiber. The choice of this fiber is extremely important because it must have a numerical aperture which closely matches that of the inner core 12 of the concentric core fiber 10. Mis- i matching the numerical aperture can lead to extraneous optical ~ power being inadvertently coupled into the outer core 14 and cause crosstalk. The diameter of the core 50 of the input fiber 58 should also be compatible and nearly equal to the core diameter of the inner core 12.
n alternative to coupling to the inner core 12 is to take a plurality, e.g. ten or twenty fibers 48 and simply cleave and epoxy all of them to the end 31 of the concentric core fiber. By transmitting light down the opposite end of the concentric core fiber, one can observe which one or two fibers the light is coupling into from the concentric core fiber.
These one or two fibers will turn out to have been accidentally aligned with the inner core 12 of the concentric core fiber.
The others are then removed~ ~lis approach, while being 3 ;~007~)~
extreme]y simple and requiring little or no micropositioning, suffers from an inherent limitation that coupling efficiency is likely to be deyraded as a xesult of this random positioning technique.
The components thus bonded toge-ther and as shown in Figure 2F further include a light absorptive region 46 wherein a black or opaque stripping compound is placed on the outside of the outer core 14 between the epoxy regions 41 and 54.
The purpose of this absorptive compound is to attenuate any optical power that is not coupled into the inner core 12 from the input fiber 48. Again the purpose of this is to mlnimize one source of crosstalk between the inner and outer cores 12 and 14 of the concentric core fiber.
The concentric core optical coupler is now complete with the exception that it is also desirable at this point to encapsulate it in some compound, not shown, but of a conven-tional type, which will give it physical durability and pre-vent breakage of the delicate exposed fibers. Additionally, the end of all the fibers, whether they be the concentric core or single core fibers, are terminated with some type of ; optical connector to facilitate connection to other elements in an optical system utilizing the construction of the subject invention.
Having thus shown and described what is at present considered to be the preferred method of fabrication and the resulting structure thereof, it should be noted that the fore-goiny has been made by way of illustration and not limitation and accordingly all modifications, alterations and changes coming within the spirit and scope of the invention as set forth in the appended claims are herein meant to be included.
Fiber optics is currently finding wide application in communications equipment because of its ability to convey modulated liyht energy and due to the bandwidth considerations involved, a gxeat deal of information can be transmitted on a relatively small size optical fiber. While single core optical fibers have conventionally been used, concentric core fibers have been shown to be potentially attractive for use in intrusion resistant communication links. As is well known, in concentric core optical fibers, two separate and distinct coaxial inner and outer light conducting cores exist, being separated from one another by cladding materlal so that optical power can be transmitted via the ;~ores with minimal crosstalk and attenuation.
Por many intrusion resistant configurations, it becomes necessary to couple separate signals from separate light sources into the two cores independently. ~o do this requires an input coupler capable of low crosstalk and low insertion losses.
One known coupler for concentric core fibers comprises the use of two small step index fibers with core diameters equal to or less than the respective core thicknesses which are precisely aligned to the two concentric fiber cores and bonded into place by means of an epoxy. Although the crosstalk in such con~iguration is found to be within acceptable tolerance, considerable improvement is needed to improve the u-tility of the device in an intrusion resistant system. Although the insertion loss of such a device has been found to be tolerable, the small size of the input fibers, however, dictates that only a few microwatts of optical power can be coupled into either `r ~
~L2(~7~D~
of the concentric core fibers. Additionally, large portions of the concentric cores, particularly the outer core, are not even illuminated and the capability of launching tens of micro-watts from light emitting sources, such as diodes, is absent.
Accordingly, it is an object of the present invention to provide an improvement in optical fiber couplers.
Still another object of the present invention is to provide an improvement in concentric core optical fiber couplers which overcomes the limitation of crosstalk and input power capability.
These and other objects of the present invention are accomplished by the fabrication method and resulting structure wherein a plurality of single core input fibers are bonded to the outer core of a coaxial core op-tical fiber at a transition re~ion where the outer core is exposed. The bonding is accomplished by transparent epoxy having an index of a fraction matching the cores. Also, opaque light absorbing material is also applied adjacent the location of bonding for absorbing extraneous optical power not coupled between the outer core and the plurality of single core input fibers. Additionally, at least one single core input fiber is aligned with the inner core of the concentrlc core fiber and bonded in end to end relationship therewith. Another region of opaque material is provided ad~acent the lcoation of the latter bonding to atten-u~te any excess power that is not launched into the inner core but may be ultimately coupled into the outer core and thus be a source of crosstalk.
Particular embodiments of the invention wi~ll be described in conjunction with the accompanying drawings in which:
Figure 1 is a diagram illustrative of a convçntional lZ~)70~
prlor art concentric core ~iber op-tical input coupler;
Figures 2A through 2F are a set of diagrams illustra-tive of the fabrication sequence of a concentric core fiber optical lnput coupler in accordance with the subject invention;
Figure 3 is a cross sectional view of Figure 2A taken along the lines 3-3 thereof; and Figure 4 is a cross sectional view of Figure 2s taken along the lines 4-4 thereof.
Referring now to the drawings and more particularly to Figure 1, there is disclosed what is considered to be a conventional prior art concentric core fiber optic input coupler. As shown, reference numeral 10 denotes a concentric core optical fiber which is comprised of coaxial inner and outer cores 12 and 14 which are respectively adapted to conduct light energy applied thereto. The inner and outer cores are separated by an intermediate annular layer of cladding 16 for the inner core, while a second annular layer of cladding 18 is formed over the outer core 14. The concentric core fiber 10 is Eabricated employing standard internal chemical vapor deposition (C~D) techniques. The cores 12 and 14 are typically comprised of germania doped silicon while the cladding layers 16 and 18 are comprised of boron doped silica. Although not shown, the concentric core fiber 10 may and usually does include a layer of plastic coating over the cladding layer 18. In order to couple energy into the concentric core fiber 10, one end of the fiber is cleaved to expose the inner and outer cores 12 and 14 whereupon two small step index single core fibers 20 and 22 also have their ends cleaved, whereupon they are precisely aligned and epoxied into place in abutti~g end to end relationship such as at the locations 24 and 26.
Referring now to a concentric core optical fiber coupler in acco~dance with the subject invention, reference to Figure 2A i5 illu~trative of the first step in fabricating ah improved concentric core fiber input coupler and consists in taking a concentric core iber 10 having a plastic coating 28 and stripping the plastic coating off for a predetermined length, such as 3 inches, from one end 30 to expose the ou-ter core cladding 18. The end 30 is cleaved to provide a generally flat end surface 31 to expose both the inner and outer cores 12 and 14 as well as the inner core cladding 16 as shown in Figure 3.
~ ext the outslde cladding layer 18 is stripped to expose the outer core 14, This is shown in Figure 2B where an area 32 of a lenyth,for example 2 inches,at the far end 30 of the fiber is stripp~d, for example, by the use of a hydro-fluoric acid solution with a controlled etch time. This will expose the outer core 14 while leaving a length 34 o~ outer core cladding visible with a transition region 35 therebetween.
While the use of hydrofluoric acid comprises the preferred method of stripping the cladding 18, any number of mechanical means may be devised. In order to determine when the outer core 14 is reached during the etching step, however, it can be determined by transmitting visible optical power down the con-centric core fiber ~rom the opposite end, not shown. When the outer core i5 reached, a signi~icant amount o~ power that is coupled in the outer core 14 will be noticeably scattered out into the etching solution.
Having exposed the length 32 of the outer core 14 as shown in Figura 2B, a plurallty of single core coupling fi~ers 36l ... 36n are prepared for bonding to the exposed outer core 14 of the concentric core fiber 10. The input coupling ~;~oo7g:)~
fibers 361 ... 36n are typically comprised of components having respective glass or silica cores 381 38n and plastic clad silica coatings 401 ... 40n. As shown in Figure 2C, the coating is stripped from one end of the fibers 36~ 36 for a length 39, for example, of one inch. With removal of the plastic coating 401 ... 40n, the cores 381 38n are cleaned and cleaved. In the subject invention, a total number of six to ten fibers 36 are required.
Assuming a number of ten, once the ten plastic clad silica fibers 361 ... 361o are prepared, they are epoxy bonded around the periphery of the outer core 14 at the transition region 36 as shown in Figuxe 2D providing epoxy region 41 at about one inch, for example, from the end of the plastic coa*ing 28 of the concentric core fiber as well as the ends of the respective coatings 40l ... 40lo of the single core fibers ~ ~ 361 ... 36lo. Choice of the epoxy compound to bond the cores 38l ... 381o to the outer core 14 is cxitical because it must be optically clear and have an index of refraction which closely matches that of the core materials, otherwise a significant amount of optical power will be lost which may inadvertently be coupled to the inner core 12. The space between the epoxy region 41 and the plastic coating 28 of the concentric core fiber and consisting of the outer cladding 18 is next covered with an opaque strippiDg compound as indicated by reference numeral 44 for absorbing extraneous optical power that is not coupled~into the outer core 14 from the single core fibers bonded thereto and coupled to sources of optical power, not shown.
Next a single core fiber 48, as shown in Figure 2E, is stripped, cleaned and cleaved so that it can be attached to the inner core 12 at the end 31 of the concentric core 70~
fiber 10. The fiber 48, for ex~mple, cornprises a step index input fiber having a light conducting core 50 covered by a coating 52. The core 50 is precisely aligned in end to end abutting relationship with the inner core 12 where it is bonded thereto by a transparent epoxy compound at a region shown by reference numeral 54. Again the epoxy compound is adap-ted to match the refractive index of the two cores 12 and 50. In aligning the core 50 to the inner core 12 prior to the epoxy bonding step, a micropositioner and a microscope can be utilized in conjunction with a source of visible optical power such as a laser. Light from the laser when coupled to the opposite end of one of the fibers is used to facilitate the alignment and positioning so that maximum coupling efficiency will be realized. As noted, the inpu-t fiber 48 comprises a step index fiber. The choice of this fiber is extremely important because it must have a numerical aperture which closely matches that of the inner core 12 of the concentric core fiber 10. Mis- i matching the numerical aperture can lead to extraneous optical ~ power being inadvertently coupled into the outer core 14 and cause crosstalk. The diameter of the core 50 of the input fiber 58 should also be compatible and nearly equal to the core diameter of the inner core 12.
n alternative to coupling to the inner core 12 is to take a plurality, e.g. ten or twenty fibers 48 and simply cleave and epoxy all of them to the end 31 of the concentric core fiber. By transmitting light down the opposite end of the concentric core fiber, one can observe which one or two fibers the light is coupling into from the concentric core fiber.
These one or two fibers will turn out to have been accidentally aligned with the inner core 12 of the concentric core fiber.
The others are then removed~ ~lis approach, while being 3 ;~007~)~
extreme]y simple and requiring little or no micropositioning, suffers from an inherent limitation that coupling efficiency is likely to be deyraded as a xesult of this random positioning technique.
The components thus bonded toge-ther and as shown in Figure 2F further include a light absorptive region 46 wherein a black or opaque stripping compound is placed on the outside of the outer core 14 between the epoxy regions 41 and 54.
The purpose of this absorptive compound is to attenuate any optical power that is not coupled into the inner core 12 from the input fiber 48. Again the purpose of this is to mlnimize one source of crosstalk between the inner and outer cores 12 and 14 of the concentric core fiber.
The concentric core optical coupler is now complete with the exception that it is also desirable at this point to encapsulate it in some compound, not shown, but of a conven-tional type, which will give it physical durability and pre-vent breakage of the delicate exposed fibers. Additionally, the end of all the fibers, whether they be the concentric core or single core fibers, are terminated with some type of ; optical connector to facilitate connection to other elements in an optical system utilizing the construction of the subject invention.
Having thus shown and described what is at present considered to be the preferred method of fabrication and the resulting structure thereof, it should be noted that the fore-goiny has been made by way of illustration and not limitation and accordingly all modifications, alterations and changes coming within the spirit and scope of the invention as set forth in the appended claims are herein meant to be included.
Claims (21)
PROPERY OR PRIVILEGE IS CLAIMED ARE DEFINED AS FOLLOWS:
1. A method fox coupling at least one single core optical fiber to each core of a dual concentric core optical fiber having coaxial inner and outer cores separated by inter-mediate cladding and including external cladding and a plastic coating over the outer core, comprising the steps of:
removing the plastic coating for a first length at one end of the concentric core optical fiber and exposing the external cladding;
removing the external cladding for a second and smaller length relative to said first length to expose the outer core of said concentric core optical fiber;
exposing the core of at least one single core fiber;
positioning and bonding said core of said single core fiber against the exposed outer core with an index matching bonding agent at a predetermined point back from said end of said concentric core fiber;
applying opaque material adjacent the location of bonding for absorbing extraneous optical power not coupled between the outer core and said core of at least one single core fiber;
exposing the core of at least one other single core fiber having a numerical aperture substantially matching that of the inner core of said concentric core optical fiber;
positioning and bonding the core of said at least one other single core fiber in end to end relationship with the inner core and wherein said bonding is effected with an index matching agent; and applying opaque material between the location of the inner core bond and the outer core bond for absorbing extraneous optical power not coupled between the core of said at least one other single core fiber and the inner core.
removing the plastic coating for a first length at one end of the concentric core optical fiber and exposing the external cladding;
removing the external cladding for a second and smaller length relative to said first length to expose the outer core of said concentric core optical fiber;
exposing the core of at least one single core fiber;
positioning and bonding said core of said single core fiber against the exposed outer core with an index matching bonding agent at a predetermined point back from said end of said concentric core fiber;
applying opaque material adjacent the location of bonding for absorbing extraneous optical power not coupled between the outer core and said core of at least one single core fiber;
exposing the core of at least one other single core fiber having a numerical aperture substantially matching that of the inner core of said concentric core optical fiber;
positioning and bonding the core of said at least one other single core fiber in end to end relationship with the inner core and wherein said bonding is effected with an index matching agent; and applying opaque material between the location of the inner core bond and the outer core bond for absorbing extraneous optical power not coupled between the core of said at least one other single core fiber and the inner core.
2. The method as defined by claim 1 wherein said steps of bonding with an index matching bonding agent comprises bonding with an epoxy compound which is substantially optically clear.
3. The method as defined by claim 1 wherein said steps of applying an opaque material comprises applying a substantially black stripping compound.
4. The method as defined by claim 1 and additionally including the step of encapsulating the cores thus bonded together in a predetermined type of encapsulating material for providing a structure having physical durability and which prevents breakage of the exposed fibers.
5. The method as defined by claim 1 wherein said step of exposing the core of at least one single core fiber comprises the step of exposing the respective cores of a plurality of single core fibers, and wherein said step of positioning and bonding against the exposed outer core comprises the step of positioning and bonding the cores of said plurality of single core fibers around the outer surface of said exposed outer core.
6. The method as defined by claim 5 wherein said plurality of single core fibers are comprised of single core fibers having outer cladding material and additionally including the step of removing said outer cladding material of said plurality of fibers for exposing predetermined lengths of the respective cores prior to positioning and bonding said cores against the exposed outer surface of the outer core of said concentric core fiber.
7. The method as defined by claim 1 wherein said step of positioning and bonding the core of at least one other single core fiber to the inner core comprises cleaving said at least one other single core fiber and the inner core to provide a substantially flat cleaved surface whereby said sur-faces are abutted together and bonded.
8. The method as defined by claim 1 wherein said step of positioning and bonding the core of at least one other single core fiber in end to end relationship with said inner core comprises the additional step of precisely aligning the core ends in mutually abutting relationship.
9. The method of claim 1 wherein said step of positioning and bonding the core of at least one other single core fiber in end to end relationship with said inner core comprises the step of cleaving a plurality of other single core fibers and said inner core and bonding the cleaved ends of said plurality of other single core fibers to the cleaved end of said inner core.
10. The method as defined by claim 1 wherein said step of positioning and bonding the core of at least one other single core fiber and said inner core comprises the additional step of aligning and abutting the ends of said cores followed by bonding their mutual ends together with a transparent epoxy compound.
11. A fiber optical coupler, comprising in combination:
a concentric core optical fiber element having coaxial inner and outer light conducting cores separated by intermediate cladding material and having external cladding material over said outer core;
a region of said concentric core optical element where said external cladding material is removed exposing a predetermined length of said outer core;
at least one single core optical fiber element having a light conducting core and external cladding covering said core;
a region of said at least one single core element where said respective external cladding is removed exposing a predetermined length of said single core, said length of said single core thus exposed being bonded to and optically matched to the length of said exposed outer core of said concentric core element; and at least one other single core optical fiber element having a single light conducting core and external cladding and wherein the end of said respective single core has a numerical aperture substantially equal to and bonded to said inner core of said concentric core element.
a concentric core optical fiber element having coaxial inner and outer light conducting cores separated by intermediate cladding material and having external cladding material over said outer core;
a region of said concentric core optical element where said external cladding material is removed exposing a predetermined length of said outer core;
at least one single core optical fiber element having a light conducting core and external cladding covering said core;
a region of said at least one single core element where said respective external cladding is removed exposing a predetermined length of said single core, said length of said single core thus exposed being bonded to and optically matched to the length of said exposed outer core of said concentric core element; and at least one other single core optical fiber element having a single light conducting core and external cladding and wherein the end of said respective single core has a numerical aperture substantially equal to and bonded to said inner core of said concentric core element.
12. The optical coupler as defined by claim 11 wherein the end of said single core of said at least one other optical fiber element is bonded in end to end abutting rela-tionship with the end of said inner core of said concentric core element.
13. The coupler as defined by claim 12 wherein said at least one other single core optical fiber element and said inner core and intermediate cladding material of said concentric core element are respectively cleaved to provide substantially flat end surfaces which are bonded together by an optically matched bonding compound.
14. The fiber optical coupler as defined by claim 11 wherein said exposed length of said outer core is located at one end of said concentric core optical fiber element and additionally including a transition region between the exposed outer core and the external cladding material and wherein the single core of said at least one single core optical fiber element is bonded to said outer core in relatively close prox-imity to said transition region.
15. The fiber optical coupler as defined by claim 14 wherein said at least one single core optical fiber element comprises a plurality of single core optical fiber elements each having a single light conducting core and external cladding covering said each respective core, and wherein each of said plurality of single core optical fiber elements have respec-tive regions where the respective external cladding is removed exposing a respective predetermined length of each single core, and wherein each core is bonded and optically matched to the length of said outer core of said concentric core element adjacent said transition region.
16. The optical fiber coupler as defined by claim 15 wherein said plurality of single cores are bonded to said outel core of said concentric core element by means of a sub-stantially transparent epoxy compound which is optically matched to the cores bonded to said outer core thereby.
17. The fiber optical coupler as defined by claim 16 and additionally including an opaque material on said external cladding material adjacent the bonded cores for absorbing extraneous optical energy not coupled between the outer core and the respective cores of said plurality of single core fiber elements.
18. The fiber optical coupler as defined by claim 17 wherein said at least one other single core optical fiber element is bonded in end to end abutting relationship with said inner core at the end of said inner core, said end of said inner core being spaced apart from said transition region where the plurality of single cores are bonded to said outer core.
19. The optical coupler as defined by claim 18 and additionally including opaque material located on said inter-mediate cladding material intermediate the bond between said outer core and said plurality of single cores of said plurality of single core elements bonded thereto and the bond between said at least one other single core optical fiber element and said inner core.
20. The optical coupler as defined by claim 19 and wherein said concentric core optical fiber element additionally includes a plastic outer coating over said external cladding and wherein said plastic coating is removed for exposing a predetermined length of said external cladding which is greater than said predetermined length of said exposed outer core.
21. The optical coupler as defined by claim 20 wherein said at least one other single core optical fiber bonded in end to end abutting relationship with said inner core comprises a plurality of single core optical fiber ele-ments cleaved and bonded in end to end relationship with said inner core.
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US06/433,756 US4465335A (en) | 1982-10-12 | 1982-10-12 | Concentric core optical fiber coupler |
US433,756 | 1982-10-12 |
Publications (1)
Publication Number | Publication Date |
---|---|
CA1200709A true CA1200709A (en) | 1986-02-18 |
Family
ID=23721427
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
CA000431772A Expired CA1200709A (en) | 1982-10-12 | 1983-06-28 | Concentric core optical fiber coupler |
Country Status (2)
Country | Link |
---|---|
US (1) | US4465335A (en) |
CA (1) | CA1200709A (en) |
Families Citing this family (51)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US4530566A (en) * | 1982-05-12 | 1985-07-23 | Bicc Public Limited Company | Optical fiber duplex coupler |
JPS61500457A (en) * | 1983-11-15 | 1986-03-13 | レイコム システムズ インコ−ポレ−テツド | optical fiber coupling device |
US4783137A (en) * | 1983-11-15 | 1988-11-08 | Kosman Karel J | Fiber optic coupling system |
US4673243A (en) * | 1984-04-10 | 1987-06-16 | Director-General Of Agency Of Industrial Science & Technology | Branch structures for rod-type optical transmission lines |
US4824204A (en) * | 1986-05-30 | 1989-04-25 | Pafford Thomas L | Fiber optic connector that joins multiple, but at least one, fiber optic cables to a dual diametered fiber optic cable and a multiple position clamp to juxtapose a plurality of the said fiber optic connecter |
US4927222A (en) * | 1986-06-16 | 1990-05-22 | Shiley Incorporated | Dual optical fiber device |
US4822127A (en) * | 1986-06-16 | 1989-04-18 | Shiley Incorporated | Multi-channel optical transmission system |
US4828348A (en) * | 1986-07-25 | 1989-05-09 | Pafford Thomas L | Fiber optic telescope |
US4784452A (en) * | 1986-08-01 | 1988-11-15 | Ensign-Bickford Optics Co. | Optical fiber coupler |
US4763976A (en) * | 1987-05-21 | 1988-08-16 | Corning Glass Works | Connector employing mode field modification |
GB8724893D0 (en) * | 1987-10-23 | 1987-11-25 | Gen Electric Co Plc | Optical fibre coupler termination |
US5077815A (en) * | 1988-09-30 | 1991-12-31 | Fujitsu Limited | Apparatus for optically connecting a single-mode optical fiber to a multi-mode optical fiber |
GB2233108A (en) * | 1989-06-09 | 1991-01-02 | Norman Barrie Jones | Fibre optic connector having smaller and larger diameter optic fibres |
US5031984A (en) * | 1990-01-17 | 1991-07-16 | Alcatel Na | Optical fiber electro-optical module |
US5177803A (en) * | 1991-04-29 | 1993-01-05 | Corning Incorporated | Coaxial optical fiber coupler transmitter-receiver apparatus and method of making same |
FR2727769B1 (en) * | 1994-12-02 | 1997-01-10 | Alcatel Cable | METHOD OF COUPLING BETWEEN A MULTI-CORE OPTICAL FIBER AND A PLURALITY OF SINGLE-CORE OPTICAL FIBERS |
US5796885A (en) * | 1996-05-09 | 1998-08-18 | Gonthier; Francois | 3×3 waveguide coupler for bidirectional dual wavelength transmission and signal sampling and method for making the same |
US6477295B1 (en) | 1997-01-16 | 2002-11-05 | Jds Uniphase Corporation | Pump coupling of double clad fibers |
CN1138160C (en) * | 1998-04-27 | 2004-02-11 | 浜松光子学株式会社 | Optical part |
US6535654B1 (en) * | 1998-12-29 | 2003-03-18 | Nxtphase Technologies, Srl | Method for fabrication of an all fiber polarization retardation device |
NL1024015C2 (en) * | 2003-07-28 | 2005-02-01 | Draka Fibre Technology Bv | Multimode optical fiber provided with a refractive index profile, optical communication system using this and method for manufacturing such a fiber. |
JP2010517693A (en) | 2007-02-06 | 2010-05-27 | グルメトリクス, インコーポレイテッド | Optical system and method for ratiometric measurement of blood glucose concentration |
JP5517919B2 (en) | 2007-05-10 | 2014-06-11 | グルメトリクス、 インク. | Balanced non-consumable fluorescent sensor for immediate intravascular glucose measurement |
FR2922657B1 (en) | 2007-10-23 | 2010-02-12 | Draka Comteq France | MULTIMODE FIBER. |
JP5631215B2 (en) | 2007-11-21 | 2014-11-26 | メドトロニック ミニメド インコーポレイテッド | Blood sugar management maintenance system |
WO2009129186A2 (en) | 2008-04-17 | 2009-10-22 | Glumetrics, Inc. | Sensor for percutaneous intravascular deployment without an indwelling cannula |
FR2932932B1 (en) * | 2008-06-23 | 2010-08-13 | Draka Comteq France Sa | MULTIPLEX WAVE LENGTH OPTIC SYSTEM WITH MULTIMODE OPTIC FIBERS |
FR2933779B1 (en) | 2008-07-08 | 2010-08-27 | Draka Comteq France | MULTIMODE OPTIC FIBERS |
FR2940839B1 (en) * | 2009-01-08 | 2012-09-14 | Draka Comteq France | INDEX GRADIENT MULTIMODAL OPTICAL FIBER, METHODS FOR CHARACTERIZATION AND MANUFACTURE OF SUCH A FIBER |
FR2946436B1 (en) * | 2009-06-05 | 2011-12-09 | Draka Comteq France | MULTIMODE OPTICAL FIBER WITH LARGE BANDWIDTH WITH AN OPTIMIZED HEAT-SLEEVE INTERFACE |
FR2953606B1 (en) * | 2009-12-03 | 2012-04-27 | Draka Comteq France | MULTIMODE OPTICAL FIBER WITH BROAD BANDWIDTH AND LOW BENDBACK LOSSES |
FR2953029B1 (en) * | 2009-11-25 | 2011-11-18 | Draka Comteq France | MULTIMODE OPTICAL FIBER WITH LARGE BANDWIDTH WITH AN OPTIMIZED HEAT-SLEEVE INTERFACE |
FR2953605B1 (en) * | 2009-12-03 | 2011-12-16 | Draka Comteq France | MULTIMODE OPTICAL FIBER WITH BROAD BANDWIDTH AND LOW BENDBACK LOSSES |
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FR2949870B1 (en) * | 2009-09-09 | 2011-12-16 | Draka Compteq France | MULTIMODE OPTICAL FIBER HAVING IMPROVED BENDING LOSSES |
US9014525B2 (en) | 2009-09-09 | 2015-04-21 | Draka Comteq, B.V. | Trench-assisted multimode optical fiber |
FR2950156B1 (en) * | 2009-09-17 | 2011-11-18 | Draka Comteq France | MULTIMODE OPTIC FIBER |
US20110077477A1 (en) | 2009-09-30 | 2011-03-31 | Glumetrics, Inc. | Sensors with thromboresistant coating |
US8467843B2 (en) | 2009-11-04 | 2013-06-18 | Glumetrics, Inc. | Optical sensor configuration for ratiometric correction of blood glucose measurement |
FR2966256B1 (en) | 2010-10-18 | 2012-11-16 | Draka Comteq France | MULTIMODE OPTICAL FIBER INSENSITIVE TO LOSSES BY |
FR2971061B1 (en) | 2011-01-31 | 2013-02-08 | Draka Comteq France | BROAD BANDWIDTH OPTICAL FIBER WITH LOW CURB LOSSES |
ES2494640T3 (en) | 2011-01-31 | 2014-09-15 | Draka Comteq B.V. | Multimode fiber |
KR20120095694A (en) * | 2011-02-21 | 2012-08-29 | 한국전자통신연구원 | Optic coupler and active optical module using the same |
EP2503368A1 (en) | 2011-03-24 | 2012-09-26 | Draka Comteq B.V. | Multimode optical fiber with improved bend resistance |
EP2506044A1 (en) | 2011-03-29 | 2012-10-03 | Draka Comteq B.V. | Multimode optical fiber |
EP2518546B1 (en) | 2011-04-27 | 2018-06-20 | Draka Comteq B.V. | High-bandwidth, radiation-resistant multimode optical fiber |
DK2541292T3 (en) | 2011-07-01 | 2014-12-01 | Draka Comteq Bv | A multimode optical fiber |
GB2511923B (en) | 2013-01-28 | 2018-10-03 | Lumentum Operations Llc | A cladding light stripper and method of manufacturing |
US10802209B2 (en) | 2013-01-28 | 2020-10-13 | Lumentum Operations Llc | Cladding light stripper |
IL234605A (en) * | 2014-09-11 | 2015-02-26 | Visionsense Ltd | Fluorescence excitation ilumination fiber |
Family Cites Families (7)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US3777149A (en) * | 1972-07-17 | 1973-12-04 | Bell Telephone Labor Inc | Signal detection and delay equalization in optical fiber transmission systems |
GB1484207A (en) * | 1975-01-23 | 1977-09-01 | Standard Telephones Cables Ltd | Optical fibre optical power dividers |
DE2704140A1 (en) * | 1977-02-02 | 1978-08-03 | Licentia Gmbh | Optical fibre adjusting device - has adaptor sleeve and holder with flat end to accommodate fibre and axially movable at right angles |
CA1091778A (en) * | 1977-06-01 | 1980-12-16 | Stephen G. Harman | Digital signal performance monitor |
US4266851A (en) * | 1979-11-06 | 1981-05-12 | International Telephone And Telegraph Corporation | Coupler for a concentric core optical fiber |
US4252403A (en) * | 1979-11-06 | 1981-02-24 | International Telephone And Telegraph Corporation | Coupler for a graded index fiber |
US4314740A (en) * | 1980-05-07 | 1982-02-09 | International Telephone And Telegraph Corporation | Optical fiber beam splitter coupler |
-
1982
- 1982-10-12 US US06/433,756 patent/US4465335A/en not_active Expired - Fee Related
-
1983
- 1983-06-28 CA CA000431772A patent/CA1200709A/en not_active Expired
Also Published As
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US4465335A (en) | 1984-08-14 |
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