Utilizing Multiple Core Or Cladding Patents (Class 385/126)
  • Publication number: 20130177273
    Abstract: A multicore optical component and corresponding methods of converting a linearly or circularly polarized Gaussian beam of light into a radially or azimuthally polarized beam of light are provided. The multicore optical component comprises a plurality of birefringent, polarization maintaining elliptical cores. The elliptical cores collectively define an azimuthally varying distribution of major axes where the orientation of the major axis of a given elliptical core is given by ?=(180/N)*n+? where n is the core number and ? is any angle greater than 0°.
    Type: Application
    Filed: July 12, 2011
    Publication date: July 11, 2013
    Applicants: Research Foundation of CUNY on behalf of City College, Corning Incorporated
    Inventors: Robert R. Alfano, Michael Etienne, Giovanni Milione, Daniel Aloysius Nolan, Henry Sztul, Ji Wang
  • Patent number: 8483535
    Abstract: The present invention embraces an optical fiber that includes a central core having an alpha-index profile with respect to an outer cladding, a first depressed trench, an inner cladding, a second depressed trench, and an outer cladding (e.g., an outer optical cladding). The second depressed trench's volume is typically greater than the first depressed trench's volume. The optical fiber achieves reduced bending losses and a high bandwidth with a reduced cladding effect for high-data rate applications.
    Type: Grant
    Filed: November 24, 2010
    Date of Patent: July 9, 2013
    Assignee: Draka Comteq B.V.
    Inventors: Denis Molin, Pierre Sillard
  • Patent number: 8478098
    Abstract: The present invention relates to an optical fiber cable incorporating a multi-core fiber provided with a plurality of cores and a cladding region. The optical fiber cable has a jacket covering the multi-core fiber. The multi-core fiber is arranged so that a hold wrap holds the cores in a state in which they are provided with a bend of not more than a fixed radius of curvature, in order to reduce crosstalk between the cores.
    Type: Grant
    Filed: February 24, 2011
    Date of Patent: July 2, 2013
    Assignee: Sumitomo Electric Industries, Ltd.
    Inventors: Tetsuya Hayashi, Eisuke Sasaoka
  • Publication number: 20130163072
    Abstract: The multi-core optical fiber amplifier according to an exemplary embodiment of the present invention having the above configuration includes: a double clad multi-core optical fiber including a plurality of cores, an internal cladding enclosing the plurality of cores, and an external cladding enclosing the internal cladding; a pumping light source outputting pumping light; an optical fiber to which pumping light from the pumping light source is input; and a wavelength division multiplexing coupler coupling the optical fiber with the double clad multi-core optical fiber to apply the pumping light input to the optical fiber from the pumping light source to the double clad multi-core optical fiber.
    Type: Application
    Filed: September 11, 2012
    Publication date: June 27, 2013
    Applicant: Electronics and Telecommunications Research Institute
    Inventors: Sun Hyok CHANG, Hwan Seok CHUNG
  • Patent number: 8472770
    Abstract: Optical fiber comprises core and a cladding configured to support and guide a fundamental transverse mode, the cladding including (i) an outer cladding having an index nout less than the index n1 of the core, (ii) an inner cladding having an index n2<nout, (iii) a pedestal having an index n4˜nout, (iv) an inner trench disposed between the inner cladding and the pedestal, the inner trench having an index n3<<n4, and (iv) an outer trench disposed between the pedestal and the outer cladding, the outer trench having an index n5<n4 and relatively close to nout. To suppress unwanted HOMs the pedestal is configured to resonantly couple at least one unwanted transverse mode of the core (other than the fundamental mode) to at least one transverse mode of the pedestal. Also described is a modular method of making the optical fiber of silica glass.
    Type: Grant
    Filed: September 28, 2010
    Date of Patent: June 25, 2013
    Assignee: OFS Fitel, LLC
    Inventors: John Michael Fini, Robert Lee Lingle, Jr., Yi Sun
  • Publication number: 20130156393
    Abstract: In a multicore fiber in which multiple single mode cores are stored in one optical fiber, the multicore fiber has a lattice-point arrangement in which multiple lattice points are periodically arranged two-dimensionally with translational symmetry and rotational symmetry or one of translational symmetry and rotational symmetry and, in that lattice-point arrangement, multiple cores are arranged with the lattice points of the lattice-point arrangement as reference positions. By giving different perturbations to the propagation constants of the cores, the propagation constants of the cores are each varied from the original propagation constants. Because of the variation in the propagation constants, the core-to-core coupling amount, which is dependent on the varied propagation constants, fall below a predetermined setting amount.
    Type: Application
    Filed: August 23, 2011
    Publication date: June 20, 2013
    Applicant: National University Corporation Yokohama National University
    Inventors: Yasuo Kokubun, Kohei Tomozawa
  • Patent number: 8467648
    Abstract: Various embodiments of optical fiber designs and fabrication processes for ultra small core fibers (USCF) are disclosed. In some embodiments, the USCF includes a core that is at least partially surrounded by a region comprising first features. The USCF further includes a second region at least partially surrounding the first region. The second region includes second features. In an embodiment, the first features are smaller than the second features, and the second features have a filling fraction greater than about 90 percent. The first features and/or the second features may include air holes. Embodiments of the USCF may provide dispersion tailoring. Embodiments of the USCF may be used with nonlinear optical devices configured to provide, for example, a frequency comb or a supercontinuum.
    Type: Grant
    Filed: April 16, 2012
    Date of Patent: June 18, 2013
    Assignee: IMRA America, Inc.
    Inventors: Liang Dong, Brian Thomas, Libin Fu
  • Patent number: 8457462
    Abstract: A multi-core optical fiber includes: a plurality of core portions; and a cladding portion positioned around the plurality of core portions and including, in a cross section of the cladding portion, a flat portion in at least a part of an outer periphery of the cladding portion and a remaining portion of the outer periphery that is circular, the cross section being perpendicular to a longitudinal direction of the cladding portion.
    Type: Grant
    Filed: July 26, 2010
    Date of Patent: June 4, 2013
    Assignee: Furukawa Electric Co., Ltd.
    Inventor: Katsunori Imamura
  • Publication number: 20130136404
    Abstract: Various apparatus and methods for reducing inter-core crosstalk in a multicore optical fiber are disclosed. A multicore optical fiber may include a plurality of cores capable of transmitting optical signals, and a cladding surrounding the cores, the cladding having a heterogeneous refractive index such that the optical signals propagate at different velocities in different ones of the cores. A multicore optical fiber may include a first length including cores having heterogeneous modal velocities and a second length, adjacent to the first length, including cores having heterogeneous modal velocities, and the cores in the first length are aligned with cores in the second length having a different modal velocity. Inter-core cross talk in a multicore optical fiber may also be reduced by transmitting optical signals through cores of a multicore optical fiber and pumping light into the cores to create unequal modal velocities in the cores.
    Type: Application
    Filed: November 30, 2011
    Publication date: May 30, 2013
    Applicant: AT&T INTELLECTUAL PROPERTY I, L.P.
    Inventor: Mark D. Feuer
  • Publication number: 20130136410
    Abstract: The present invention relates to a multi-core optical fiber having a structure to effectively reduce crosstalk between adjacent core regions among a plurality of core regions. The multi-core optical fiber (1) has a leakage reduction portion (50), at least a portion of which is arranged at a position on a straight line connecting adjacent core regions together among a plurality of core regions (10). The leakage reduction portion (50) reduces leakage light in the multi-core optical fiber (1) from each of the core regions (10), thereby effectively reducing crosstalk between adjacent core regions.
    Type: Application
    Filed: January 18, 2013
    Publication date: May 30, 2013
    Applicant: SUMITOMO ELECTRIC INDUSTRIES, LTD.
    Inventor: Eisuke SASAOKA
  • Patent number: 8452144
    Abstract: A light emitter according to one embodiment has a fiber shape. And it includes a core portion containing a light emitting material, the material absorbing excitation light and emitting light having a wavelength longer than a wavelength of the excitation light. And also it includes a clad portion provided outside the core portion, the clad portion having a first region and second regions, the second regions being periodically formed in the first region, the second regions having a refractive index higher than a refractive index of a first region, the refractive index of the first region being equal to or higher than a refractive index of the core portion.
    Type: Grant
    Filed: February 24, 2011
    Date of Patent: May 28, 2013
    Assignee: Kabushiki Kaisha Toshiba
    Inventors: Shinji Saito, Yasushi Hattori, Rei Hashimoto, Shinya Nunoue
  • Patent number: 8452145
    Abstract: According to some embodiments the triple-clad optical fiber comprises a core, a first inner cladding, a second inner cladding, and an outer cladding wherein: (i) the core comprises a radius r0 a first index of refraction n0; (ii) the first inner cladding surrounds the core and has a numerical aperture of at least about 0.12, and a second index of refraction n1 such that n1<n0, (iii) the second inner cladding surrounds the first inner cladding a numerical aperture of at least about 0.2, and a second index of refraction n2 such that n2>n1, wherein a relative refractive index percent (?%) of the second cladding relative to the outer cladding is greater 1%; and (iv) the outer cladding surrounds the second inner cladding and has a third index of refraction n3 such that n3<n2, and n3<n1.
    Type: Grant
    Filed: February 24, 2010
    Date of Patent: May 28, 2013
    Assignee: Corning Incorporated
    Inventor: Ming-Jun Li
  • Publication number: 20130129292
    Abstract: The present invention relates to a multi-core optical fiber applicable to an optical transmission line of bi-directional optical communication and a bi-directional optical communication method. The multi-core optical fiber has plural cores in a common cladding. Signal light is transmitted in a first direction through an arbitrary core among the cores, whereas the signal light is transmitted in a second direction opposite to a first direction, through all the nearest-neighbor cores to the arbitrary core.
    Type: Application
    Filed: November 8, 2012
    Publication date: May 23, 2013
    Applicant: SUMITOMO ELECTRIC INDUSTRIES, LTD.
    Inventor: SUMITOMO ELECTRIC INDUSTRIES, LTD.
  • Patent number: 8447156
    Abstract: The present invention relates to a multi-core optical fiber having a structure to effectively reduce crosstalk between adjacent core regions among a plurality of core regions. The multi-core optical fiber (1) has a leakage reduction portion (50), at least a portion of which is arranged at a position on a straight line connecting adjacent core regions together among a plurality of core regions (10). The leakage reduction portion (50) reduces leakage light in the multi-core optical fiber (1) from each of the core regions (10), thereby effectively reducing crosstalk between adjacent core regions.
    Type: Grant
    Filed: January 19, 2010
    Date of Patent: May 21, 2013
    Assignee: Sumitomo Electric Industries, Ltd.
    Inventor: Eisuke Sasaoka
  • Patent number: 8442372
    Abstract: The microstructured optical fibre comprises a core (4) surrounded by a sheath (1) comprising a base material having a refraction index (ni) and a plurality of at least two different types of inclusion: a first type of inclusion (2) having a refraction index n2 (n2>n1), and a second type of inclusion (3) having a refraction index n3 (n3<n1). The inclusions (2, 3) are arranged and dimensioned in such a way as to ensure guidance, by total internal reflection (RTI), of a fundamental mode of the light, centred on a wavelength ?RTI, and of a fundamental mode of the light in the first photonic forbidden band (BG1), centred on a wavelength ?BG1, which is different to that ?RTI of the fundamental mode guided by total internal reflection (RTI).
    Type: Grant
    Filed: July 25, 2008
    Date of Patent: May 14, 2013
    Assignee: Universite des Sciences et Technologies de Lille
    Inventors: Yves Quiquempois, Geraud Bouwmans, Mathias Perrin, Aurelie Betourne, Marc Douay, Karen Delplace, Antoine Le Rouge, Laurent Bigot
  • Patent number: 8432527
    Abstract: Light guide devices comprising an intermediate layer of low refractive index between higher refractive index elements are described. The light guide devices are suitable for use in backlights.
    Type: Grant
    Filed: September 29, 2009
    Date of Patent: April 30, 2013
    Assignee: ITI Scotland Limited
    Inventor: Andrew Michael Tomlinson
  • Patent number: 8433168
    Abstract: A section of active optical fiber (11) which comprises an active core (1), an inner cladding layer (2) and an outer cladding layer (3). The diameter of said core 1) and the thickness of said inner cladding (2) change gradually along the length of said section of active optical fiber (11). This forms tapered longitudinal profile enabling a continuous mode conversion process along the length of the section of fiber (11). The method for fabricating a section of tapered active optical fiber comprises the steps of fabricating a preform for drawing active optical fiber from said preform, installing said preform into a drawing tower, drawing optical fiber in said drawing tower and altering at least one of the two parameters including the take-off preform speed and the take-up fiber speed during drawing of the optical fiber.
    Type: Grant
    Filed: September 29, 2008
    Date of Patent: April 30, 2013
    Assignee: Optoelectronics Research Center, Tampere University of Technology
    Inventors: Valery Filippov, Yuriy Chamorovskiy, Oleg Okhotnikov, Markus Pessa
  • Patent number: 8433166
    Abstract: A multi-core optical fiber 1A in which a plurality of cores can easily be identified even in the case where they are symmetrically arranged in its section has seven cores 10 to 16, a visual recognition marker 20, and a shared cladding 30 enclosing the seven cores 10 to 16 and the visual recognition marker 20. The cores 10 to 16 and the visual recognition marker 20 extend along the fiber-axis direction. The respective refractive index of the cores 10 to 16 is higher than the refractive index of the cladding 30. The refractive index of the visual recognition marker 20 differs from that of the cladding 30. In the cross-section perpendicular to the fiber-axis, the cores 10 to 16 are arranged such that they have 6-fold rotational symmetry and line symmetry. The visual recognition marker 20 is arranged at a position which breaks such symmetry.
    Type: Grant
    Filed: January 26, 2011
    Date of Patent: April 30, 2013
    Assignee: Sumitomo Electric Industries, Ltd.
    Inventors: Takuji Nagashima, Toshiki Taru, Takashi Sasaki
  • Patent number: 8433169
    Abstract: An optical fiber that is relatively insensitive to bend loss comprises a core region and a cladding region configured to support and guide the propagation of light in a fundamental transverse mode, the cladding region including (i) an outer cladding region having a refractive index less than that of the core region, (ii) an annular cladding pedestal region having a refractive index higher than that of the outer cladding region and comparable to that of the core region, and (iii) an annular cladding inner trench region disposed between the core region and the pedestal region, the inner trench region having a refractive index less than that of the outer cladding region. In one embodiment, the fiber also includes a (iv) an annular cladding outer trench region disposed between the pedestal region and the outer cladding region, the outer trench region having a refractive index less than that of the outer cladding region.
    Type: Grant
    Filed: January 12, 2011
    Date of Patent: April 30, 2013
    Assignee: OFS Fitel, LLC
    Inventors: John Michael Fini, Poul Kristensen
  • Publication number: 20130100972
    Abstract: Techniques are disclosed for improving pump absorption and efficiency for fiber lasers and amplifiers, for instance. In some embodiments, the techniques are implemented by applying a partially reflective coating on a fiber end-face to double-pass any unabsorbed or otherwise excess pump light in the cladding of a fiber. While being reflective to pump wavelengths, the coating can be non-reflective at the lasing wavelength, so as to avoid unwanted feedback into the system. The benefits of this approach include that excess pump power can be effectively utilized to add more power to the laser output. In addition, the double-pass technique allows for the use of a shorter fiber length, which in turn allows for more compact system designs, saves on material costs, and facilitates manufacturability.
    Type: Application
    Filed: March 26, 2012
    Publication date: April 25, 2013
    Applicant: BAE Systems Information and Electric Systems Integration Inc.
    Inventor: Daniel J. Creeden
  • Publication number: 20130101261
    Abstract: A radiation-resistant optical fiber includes at least one core and at least one first cladding surrounding the core. The core includes a phosphosilicate matrix, the core being rare-earth doped, the rare earth being chosen from erbium, ytterbium, neodymium, thulium or erbium-ytterbium of thulium-holmium codoped and the core is cerium codoped. Also described is a method for radiation-hardening an optical fiber including the core having a phosphosilicate matrix, the core being rare-earth doped, the rare earth being chosen from erbium, ytterbium, neodymium and thulium, or erbium-ytterbium or thulium-holmium codoped, and including a step of cerium codoping the core of the fiber.
    Type: Application
    Filed: July 8, 2011
    Publication date: April 25, 2013
    Applicant: IXFIBER
    Inventors: Benoit Cadier, Arnaud Laurent, Thierry Robin, Sylvain Girard, Claude Marcandella
  • Patent number: 8428414
    Abstract: A single-mode optical fiber includes a central core, an intermediate cladding, a depressed trench, and an external optical cladding. The central core has a radius r1 and a positive refractive index difference ?n1 with the optical cladding. The intermediate cladding has a radius r2 and a refractive index difference ?n2 with the optical cladding, wherein ?n2 is less than ?n1. The depressed trench has a radius r3 and a negative index difference ?n3 with the optical cladding. At a wavelength of 1310 nanometers, the optical fiber has a mode field diameter (MFD) between 8.6 microns and 9.5 microns and, at a wavelength of 1550 nanometers, the optical fiber has bending losses less than about 0.25×10?3 dB/turn for a radius of curvature of 15 millimeters. At a wavelength of 1260 nanometers, attenuation of the LP11 mode to 19.3 dB is achieved over less than 90 meters of fiber.
    Type: Grant
    Filed: March 26, 2012
    Date of Patent: April 23, 2013
    Assignee: Draka Comteq, B.V.
    Inventors: Louis-Anne de Montmorillon, Simon Richard, Denis Molin, David Boivin, Marianne Bigot-Astruc, Pierre Sillard
  • Patent number: 8425126
    Abstract: A multi-core optical fiber which has a plurality of core portions arranged separately from one another in a cross-section perpendicular to a longitudinal direction, and a cladding portion located around the core portions, the multi-core optical fiber comprises a cylindrical portion of which diameter is even, and a reverse-tapered portion gradually expanding toward at least one edge in the longitudinal direction, wherein a gap between each adjacent ones of the core portions in the reverse-tapered portion is greater than that in the cylindrical portion.
    Type: Grant
    Filed: December 14, 2010
    Date of Patent: April 23, 2013
    Assignee: Furukawa Electric Co., Ltd.
    Inventor: Katsunori Imamura
  • Patent number: 8428411
    Abstract: The present invention embraces a single-mode optical fiber typically having reduced bending losses. The optical fiber includes a central core, an intermediate cladding, a buried trench, and an outer cladding. The optical fiber typically has (i), at a wavelength of 1310 nanometers, a mode field diameter with a nominal value of between about 8.6 microns and 9.5 microns (and a tolerance of ±0.4 micron), (ii) a cable cut-off wavelength of no more than 1260 nanometers, and (iii), for a bending radius of 15 millimeters at a wavelength of 1550 nanometers, bending losses of no more than 0.03 dB/turn.
    Type: Grant
    Filed: March 15, 2011
    Date of Patent: April 23, 2013
    Assignee: Draka Comteq, B.V.
    Inventors: Louis-Anne de Montmorillon, Simon Richard, Pierre Sillard
  • Patent number: 8422839
    Abstract: An optical fiber-type optical filter includes: two fiber regions, namely, the first and second PBGF regions, each of which includes: a core section extending in a waveguide direction of incident light; and a clad section extending in the waveguide direction and surrounding the core section, wherein the clad section includes a plurality of high rods which have a refractive index higher than that of a base material of the clad section, extend in the waveguide direction, and are arranged periodically in a cross section perpendicular to the waveguide direction, and a light loss region between mutually-facing end surfaces of the first and second fiber regions, for coupling a radiation mode with a waveguide mode in which light intensity is observed in the high refractive-index sections in the clad section.
    Type: Grant
    Filed: March 22, 2011
    Date of Patent: April 16, 2013
    Assignee: Fujikura Ltd.
    Inventor: Akira Sakamoto
  • Publication number: 20130089113
    Abstract: Various embodiments include large cores fibers that can propagate few modes or a single mode while introducing loss to higher order modes. Some of these fibers are holey fibers that comprising cladding features such as air-holes. Additional embodiments described herein include holey rods. The rods and fibers may be used in many optical systems including optical amplification systems, lasers, short pulse generators, Q-switched lasers, etc. and may be used for example for micromachining.
    Type: Application
    Filed: September 11, 2012
    Publication date: April 11, 2013
    Applicant: IMRA AMERICA, INC.
    Inventors: LIANG DONG, WILLIAM WONG, MARTIN E. FERMANN
  • Publication number: 20130084077
    Abstract: An optical fiber that propagates light over a use wavelength bandwidth of 100 nm or wider in a plurality of propagation modes is provided. The optical fiber has: a confinement loss equal to or less than 1 dB/km in each of the plurality of propagation modes over the use wavelength bandwidth; and a bending loss equal to or less than 100 dB/m in each of the plurality of propagation modes over the use wavelength bandwidth when the optical fiber is bent at a diameter of 20 mm.
    Type: Application
    Filed: September 4, 2012
    Publication date: April 4, 2013
    Applicant: FURUKAWA ELECTRIC CO., LTD.
    Inventor: Kazunori MUKASA
  • Patent number: 8412009
    Abstract: An optical fiber contact for transmitting moderate-magnitude optical power. The fiber contact includes an optical fiber having an inner core and a surrounding cladding for transmitting the radiation in the core. Additional surrounding layers including so-called buffer and jackets mechanically stabilize the optical fiber. The forward part of the optical fiber contact is surrounded by a transparent tubular member. The tubular member extends a certain length along the outer cylindrical surface of the cladding. There is no heating by power loss radiation, as the power loss radiation is leaving the contact as optical radiation. To disperse radiation propagating within the cladding, the cladding includes a roughening or additional layers of a transparent material. In case of additional layers of transparent material then the outermost layer should be roughened.
    Type: Grant
    Filed: September 19, 2008
    Date of Patent: April 2, 2013
    Inventors: Sven-Olov Roos, Ola Blomster, Thomas Uhrwing
  • Patent number: 8406592
    Abstract: Bend resistant multimode optical fibers are disclosed herein. Multimode optical fibers disclosed herein comprise a core region and a cladding region surrounding and directly adjacent to the core region, the cladding region comprising a depressed-index annular portion comprising a depressed relative refractive index which is spaced from the core at least 0.5 microns and less than 4 microns.
    Type: Grant
    Filed: December 12, 2008
    Date of Patent: March 26, 2013
    Assignee: Corning Incorporated
    Inventors: John Steele Abbott, III, Scott Robertson Bickham, Dana Craig Bookbinder, Ming-Jun Li, Chukwuemeka Benneth Onuh, Kimberly Ann Wilbert
  • Patent number: 8406595
    Abstract: The present invention relates to a multi-core fiber having a structure for effectively suppressing crosstalk increase between cores caused by bending within an allowable range. The multi-core fiber comprises a plurality of types of cores respectively extending along an optical axis and a cladding region, and the effective refractive index of each core is set so that, in all pairs of cores of different types, a relative refractive index difference between an effective refractive index of a core of a certain type and an effective refractive index of a core of another type satisfies a condition regulated according to a core spacing between cores and a bending radius.
    Type: Grant
    Filed: January 21, 2011
    Date of Patent: March 26, 2013
    Assignee: Sumitomo Electric Industries, Ltd.
    Inventor: Tetsuya Hayashi
  • Patent number: 8403836
    Abstract: A large diameter fiber is composed of a multimode optical fiber and provided with a fiber body having a constant diameter in an optical axis direction XA and a tapered section tapered in diameter toward a light exit surface. An adhesive member attaches the large diameter fiber inside a retaining hole of a tubular housing such that an outer circumferential surface of a tapered clad of the tapered section is entirely exposed to air to a predetermined depth from the light exit surface. A light passing space is a ring-like space formed between the exposed outer circumferential surface of the tapered clad and an inner circumferential surface of the tubular housing. Light in the tapered section is output from the light exit surface and partially leaked to the tapered clad. A part of the leaked light is released from the light passing space.
    Type: Grant
    Filed: February 15, 2010
    Date of Patent: March 26, 2013
    Assignee: FUJIFILM Corporation
    Inventor: Shinichi Shimotsu
  • Patent number: 8401355
    Abstract: A hydrogen-resistant optical fiber particularly well-suitable for downhole applications comprises a relatively thick pure silica core and a depressed-index cladding layer. Interposed between the depressed-index cladding layer and the core is a relatively thin germanium-doped interface. By maintaining a proper relationship between the pure silica core diameter and the thickness of the germanium-doped interface, a majority (preferably, more than 65%) of the propagating signal can be confined within the pure silica core and, therefore, be protected from hydrogen-induced attenuation problems associated with the presence of germanium (as is common in downhole fiber applications). The hydrogen-resistant fiber of the present invention can be formed to include one or more Bragg gratings within the germanium-doped interface, useful for sensing applications.
    Type: Grant
    Filed: January 12, 2012
    Date of Patent: March 19, 2013
    Assignee: Baker Hughes Incorporated
    Inventors: Daniel Scott Homa, Brooks Childers
  • Publication number: 20130064543
    Abstract: An optical transmission system includes an optical transmitting unit that outputs at least one optical signal having a wavelength included in an operation wavelength band and a holey fiber that is connected to the optical transmitting unit. The holey fiber includes a core and a cladding formed around the core. The cladding includes a plurality of holes formed around the core in a triangular lattice shape. The holey fiber transmits the optical signal in a single mode. A bending loss of the holey fiber is equal to or less than 5 dB/m at a wavelength within the operation wavelength band when the holey fiber is wound at a diameter of 20 millimeters.
    Type: Application
    Filed: November 6, 2012
    Publication date: March 14, 2013
    Applicant: FURUKAWA ELECTRIC CO., LTD.
    Inventor: FURUKAWA ELECTRIC CO., LTD.
  • Publication number: 20130063809
    Abstract: An optical amplifier includes a pump light source that outputs pump light, and a multicore fiber that includes at least one pumping core, the pump light being input to the at least one pumping core by coupler, at least two signal light cores doped with an active substance for optical amplification, at least one signal light being input to at least one of the signal light cores, and a cladding, wherein the pump light propagating the at least one pumping core and exciting the active substance in the signal light cores, so as to amplify the at least one signal light propagating through the at least one of the signal light cores.
    Type: Application
    Filed: August 29, 2012
    Publication date: March 14, 2013
    Applicant: Fujitsu Limited
    Inventors: Masato Nishihara, Takeshi Hoshida
  • Patent number: 8385704
    Abstract: The present invention embraces an optical fiber that includes a central core having a graded-index profile with respect to an outer cladding. The optical fiber also includes an inner cladding, a depressed trench, and an outer cladding. The optical fiber achieves reduced bending losses and a high bandwidth with a reduced cladding effect for high-data-rate applications.
    Type: Grant
    Filed: September 13, 2012
    Date of Patent: February 26, 2013
    Assignee: Draka Comteq BV
    Inventors: Denis Molin, Pierre Sillard
  • Patent number: 8385705
    Abstract: Disclosed is an improved, single-mode optical fiber possessing a novel coating system. When combined with a bend-insensitive glass fiber, the novel coating system according to the present invention yields an optical fiber having exceptionally low losses. The coating system features (i) a softer primary coating with excellent low-temperature characteristics to protect against microbending in any environment and in the toughest physical situations and, optionally, (ii) a colored secondary coating possessing enhanced color strength and vividness. The secondary coating provides improved ribbon characteristics for structures that are robust, yet easily entered (i.e., separated and stripped). The optional dual coating is specifically balanced for superior heat stripping in fiber ribbons, with virtually no residue left behind on the glass. This facilitates fast splicing and terminations.
    Type: Grant
    Filed: March 26, 2012
    Date of Patent: February 26, 2013
    Assignee: Draka Comteq, B.V.
    Inventors: Bob J. Overton, Louis-Anne de Montmorillon, Simon Richard, Denis Molin, Marianne Bigot-Astruc, Pierre Sillard, David Boivin
  • Patent number: 8385703
    Abstract: Multimode optical fibers with a large core diameter and high numerical aperture are disclosed herein. Multimode optical fibers disclosed herein comprise a core region having a radius greater than 30 microns and a cladding region surrounding and directly adjacent to the core region, the cladding region comprising a depressed-index annular portion comprising a depressed relative refractive index. The depressed cladding region is surrounded by a titania doped cladding region. The fiber has a total outer diameter of less than 120 microns, and exhibits an overfilled bandwidth at 850 nm greater than 200 MHz-km.
    Type: Grant
    Filed: February 25, 2011
    Date of Patent: February 26, 2013
    Assignee: Corning Incorporated
    Inventors: Kevin Wallace Bennett, Scott Robertson Bickham, James A Derick, Percil Watkins
  • Patent number: 8385697
    Abstract: An optical fiber includes a cladding, a first core, and a second core. At least one of the first core and the second core is hollow and is substantially surrounded by the cladding. At least a portion of the first core is generally parallel to and spaced from at least a portion of the second core. The optical fiber includes a defect substantially surrounded by the cladding, the defect increasing a coupling coefficient between the first core and the second core.
    Type: Grant
    Filed: December 7, 2011
    Date of Patent: February 26, 2013
    Assignee: The Board of Trustees of the Leland Stanford Junior University
    Inventors: Vinayak Dangui, Michel J. F. Digonnet, Gordon S. Kino
  • Publication number: 20130044989
    Abstract: Provided is a method of producing a preform 10P for a coupled multi-core fiber including: an arranging process P1 for arranging a plurality of core glass bodies 11R and a clad glass body 12R in such a way that the plurality of core glass bodies 11R are surrounded by the clad glass body 12R; and a collapsing process P2 for collapsing a gap between the core glass bodies 11R and the clad glass body 12R, wherein the respective core glass bodies 11R have outer regions 16 having a predetermined thickness from the periphery surfaces and made of silica glass undoped with germanium, and the clad glass body 12R is made of silica glass having a refractive index lower than a refractive index of the outer regions of the core glass bodies 11R.
    Type: Application
    Filed: August 16, 2012
    Publication date: February 21, 2013
    Applicant: FUJIKURA LTD.
    Inventors: Shoji Tanigawa, Katsuhiro Takenaga
  • Publication number: 20130044988
    Abstract: A coupled multi-core fiber 10 includes a plurality of cores 11 and a clad 12 surrounding the plurality of cores 11, wherein the plurality of cores 11 are arranged in such a way that periphery surfaces of the adjacent cores 11 contact with each other, each of the cores 11 is made to have a refractive index higher than the clad 12 and includes: an outer region 16 having a predetermined thickness from the periphery surface; and an inner region 15 made to have a higher refractive index than the outer region 16 and surrounded by the outer region 16.
    Type: Application
    Filed: August 16, 2012
    Publication date: February 21, 2013
    Applicant: FUJIKURA LTD.
    Inventors: Shoji Tanigawa, Katsuhiro Takenaga
  • Publication number: 20130039627
    Abstract: In some embodiments, coupled multi-core fiber is used for optical transmission. The coupled multi-core fiber includes multiple cores each supporting a spatial mode. The cores are positioned close enough to cause coupling between their modes that generates supermodes, that are used to transmit data.
    Type: Application
    Filed: August 13, 2012
    Publication date: February 14, 2013
    Applicant: University of Central Florida Research Foundation, Inc.
    Inventors: Guifang Li, Xia Cen, Bai Neng
  • Patent number: 8374472
    Abstract: An optical fiber that is relatively insensitive to bend loss comprises a core region and a cladding region configured to support and guide the propagation of light in a fundamental transverse mode, the cladding region including (i) an outer cladding region having a refractive index less than that of the core region, (ii) an annular cladding pedestal region having a refractive index higher than that of the outer cladding region and comparable to that of the core region, and (iii) an annular cladding inner trench region disposed between the core region and the pedestal region, the inner trench region having a refractive index less than that of the outer cladding region. In one embodiment, the fiber also includes a (iv) an annular cladding outer trench region disposed between the pedestal region and the outer cladding region, the outer trench region having a refractive index less than that of the outer cladding region.
    Type: Grant
    Filed: February 28, 2008
    Date of Patent: February 12, 2013
    Assignee: OFS Fitel, LLC
    Inventors: John Michael Fini, Poul Kristensen
  • Patent number: 8374474
    Abstract: A structure for optical fiber with single layer coating suitable for field termination process is provided, including a glass core, a cladding layer, and a permanent coating protective layer. The thickness of the permanent coating ranges preferably from about 4 um to 8 um, and remains on the optical fiber during the field termination process to provide protection to the optical fiber after the buffer layer is striped off. In addition, the optical fiber structure of the present invention still conforms to the specification of the standard optical fiber. The optical fiber of the structure according to the present invention can simplify the field termination process so that the quality efficiency of the deployment is improved.
    Type: Grant
    Filed: December 17, 2010
    Date of Patent: February 12, 2013
    Assignees: Prime Optical Fiber Corporation, OWLink Technology, Inc.
    Inventors: Kuei-Huang Chou, Shing-wu Paul Tzeng, Chih-Yu Wu, Sheng-Hsiang Hsu
  • Patent number: 8369673
    Abstract: An optical fiber cable has a transparent core for transmitting optical data and a biodegradable protective covering. When placed in water, the protective covering dissolves in water after a few days. The raw remaining optical fiber cover is very thin, approximately 0.003 inches in diameter and very fragile. The optical core is easily broken into fine particles which becomes sand on the sea floor.
    Type: Grant
    Filed: June 8, 2010
    Date of Patent: February 5, 2013
    Assignee: Bluefin Robotics Corporation
    Inventors: Graham Hawkes, Glen Sussman, Charles S Chiau
  • Patent number: 8367159
    Abstract: The application relates to methods for producing islands of functionality within nanoscale apertures. Islands of functionality can be produced by growing an aperture constriction layer from the walls, functionalizing the exposed base of the aperture, then removing the aperture constriction layer. The aperture constriction layer can be produced, for example, by anodically growing an oxide layer onto a cladding through which the aperture extends. The islands of functionality can be used to bind a single molecule of interest, such as an enzyme within the nanoscale aperture.
    Type: Grant
    Filed: December 7, 2010
    Date of Patent: February 5, 2013
    Assignee: Pacific Biosciences of California, Inc.
    Inventors: Jeremy Gray, Ronald L. Cicero, Annette Grot, Natasha Popovich, Stephen Dudek
  • Publication number: 20130016949
    Abstract: A multicore fiber includes cores located at vertexes of a polygonal ring and a cladding including sub medium regions and covering the cores. A refractive index of the cladding is lower than a refractive index of the cores and higher than a refractive index of the sub medium regions. The sub medium regions are arranged at positions to reduce a crosstalk between adjacent cores of the cores.
    Type: Application
    Filed: July 10, 2012
    Publication date: January 17, 2013
    Inventors: Bing YAO, Kazumasa OHSONO, Noribumi SHIINA
  • Patent number: 8351749
    Abstract: Certain embodiments of the invention may include systems and methods for coating an optical fiber. The method includes coating an optical fiber with a primary coating, preparing a secondary coating by selectively mixing a concentrate with an ultraviolet (UV) curable diluent coating, wherein the concentrate comprises predetermined amounts of a color agent and a release agent, and applying the secondary coating to the optical fiber and primary coating.
    Type: Grant
    Filed: December 17, 2009
    Date of Patent: January 8, 2013
    Assignee: OFS Fitel, LLC
    Inventors: Kariofilis Konstadinidis, Harry Garner
  • Publication number: 20130004135
    Abstract: A depressed graded-index multimode optical fiber includes a central core, an inner depressed cladding, a depressed trench, an outer depressed cladding, and an outer cladding. The central core has an alpha-index profile. The depressed claddings limit the impact of leaky modes on optical-fiber performance characteristics (e.g., bandwidth, core size, and/or numerical aperture).
    Type: Application
    Filed: June 27, 2012
    Publication date: January 3, 2013
    Applicant: DRAKA COMTEQ, B.V.
    Inventors: Marianne Bigot-Astruc, Denis Molin, Pierre Sillard
  • Patent number: 8346041
    Abstract: The present invention relates to an optical communications system that allows improving OSNR while suppressing the power increase of pumping light for distributed Raman amplification. In the optical communications system, an optical fiber is laid in a transmission section between a transmitter station (or repeater station) and a receiver station (or repeater station), and optical signals are transmitted from the transmitter station to the receiver station via the optical fiber. In the optical communications system, pumping light for Raman amplification, outputted by a pumping light source provided in the receiver station, is fed into the optical fiber via an optical coupler, and the optical signals are distributed-Raman-amplified in the optical fiber. The transmission loss and the effective area of the optical fiber satisfy, at the wavelength of 1550 nm, a predetermined relationship.
    Type: Grant
    Filed: February 13, 2012
    Date of Patent: January 1, 2013
    Assignee: Sumitomo Electric Industries, Ltd.
    Inventors: Eisuke Sasaoka, Kazuya Kuwahara
  • Patent number: 8338799
    Abstract: A sensor based on optical fiber technology is described. The sensor includes an elongate core for propagating light having an excitation wavelength; an interaction region that includes a fluorescent material for excitation by the propagated light to produce fluorescent light; and an interface region defining a boundary between the elongate core and the interaction region. The elongate core of the sensor is adapted to increase an intensity of the propagated light at the interface region to increase the amount of captured fluorescent light in the elongate core.
    Type: Grant
    Filed: July 24, 2008
    Date of Patent: December 25, 2012
    Assignee: Adelaide Research & Innovation Pty Ltd.
    Inventors: Tanya Monro, Heike Ebendorff-Heidepriem, Stephen Warren Smith, Shahraam Afshar Vahid, Yinlan Ruan