Patents by Inventor Siddharth Ramachandran

Siddharth Ramachandran has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Publication number: 20120093461
    Abstract: An apparatus and method for producing optical pulses of a desired wavelength utilizes a section of higher-order-mode (HOM) fiber to receive input optical pulses at a first wavelength, and thereafter produce output optical pulses at the desired wavelength through soliton self-frequency shifting (SSFS) or Cherenkov radiation. The HOM fiber is configured to exhibit a large positive dispersion and effective area at wavelengths less than 1300 nm.
    Type: Application
    Filed: December 22, 2011
    Publication date: April 19, 2012
    Applicant: OFS FITEL, LLC
    Inventor: Siddharth Ramachandran
  • Patent number: 8103142
    Abstract: When transmitting in higher-order modes (HOMs), the chances of dielectric breakdown in the bulk glass can be reduced by judicious selection of the mode of transmission. Since energy distributions in the HOM profile change with the mode order, one can calculate the peak intensity for any given HOM. Correspondingly, one can calculate whether any portion of the transmitted pulse will exceed the breakdown threshold for the optical fiber through which the HOM signal is being transmitted. Should the calculated energy exceed the dielectric breakdown threshold, another HOM with a lower peak intensity can be selected for signal transmission. Disclosed are systems and methods for selecting an appropriate HOM to reduce the likelihood of dielectric breakdown.
    Type: Grant
    Filed: February 5, 2008
    Date of Patent: January 24, 2012
    Assignee: OFS Fitel, LLC
    Inventors: Siddharth Ramachandran, Andrew D Yablon
  • Publication number: 20110210269
    Abstract: Methods and systems are described using a non-linear optical system comprising a laser and a light delivery system comprising a single mode fiber, a mode converter, and a high order mode fiber, wherein the light delivery system that receives light from the source and provides a structured free-space beam having an embedded Gaussian beam. The light delivery system functions to illuminate a region of a sample and generate a non-linear response in a spatial region smaller than that associated with a Gaussian beam having a width comparable to the width of the embedded Gaussian beam. In another aspect, the light delivery system illuminates a region of a sample and generates a non-linear emission of radiation, is depicted. A further aspect of this embodiment includes an imaging assembly for detecting the non-linear emission and using a signal derived from the detected emission to generate a microscopic image of the sample.
    Type: Application
    Filed: November 24, 2010
    Publication date: September 1, 2011
    Applicant: OFS Fitel, LLC
    Inventors: Jeffrey W. Nicholson, Siddharth Ramachandran
  • Patent number: 8000570
    Abstract: Disclosed are multi-stage optical amplifiers that propagate higher-order mode (HOM) signals. One embodiment, among others, comprises a first segment of optical fiber in which a first HOM signal propagates, a second segment of optical fiber in which a second HOM signal propagates, and a mode converter that converts the first HOM signal into the second HOM signal.
    Type: Grant
    Filed: February 5, 2008
    Date of Patent: August 16, 2011
    Assignee: Furukawa Electric North America, Inc.
    Inventors: David J Digiovanni, Siddharth Ramachandran
  • Patent number: 7941012
    Abstract: A phase-engineered fiber is described for generating a cylindrically polarized beam. The fiber includes a core region, a ring region surrounding the core region, and an outer cladding region surrounding the ring region. The fiber regions are configured to cause the fiber to have a refractive index step proximate to the peak amplitude value of the mode intensity profile of an LP11 mode guided by the fiber. The refractive index step is sufficiently steep such that at least one of the cylindrically polarized TM01 and TE01 eigenmodes has an effective refractive index neff that is sufficiently separated from the respective effective refractive index of the other eigenmodes to allow coupling to the at least one cylindrically polarized eigenmode with minimal coupling to the other eigenmodes.
    Type: Grant
    Filed: August 10, 2010
    Date of Patent: May 10, 2011
    Assignee: OPS Fitel, LLC
    Inventor: Siddharth Ramachandran
  • Patent number: 7925128
    Abstract: The present disclosure provides an approach to more efficiently amplify signals by matching either the gain materials or the pump profile with the signal profile for a higher-order mode (HOM) signal. By doing so, more efficient energy extraction is achieved.
    Type: Grant
    Filed: February 5, 2008
    Date of Patent: April 12, 2011
    Assignee: OFS Fitel, LLC
    Inventor: Siddharth Ramachandran
  • Publication number: 20110052197
    Abstract: An arrangement for providing pulse compression at the output of an optical continuum source (advantageously used in spectral slicing applications) includes a section of higher-order mode (HOM) fiber configured to exhibit a predetermined dispersion in at least a portion of the predetermined wavelength range and an effective area greater than 40 ?m2, the dispersion of the HOM fiber selected to compensate for the dispersion introduced by the optical continuum source. The HOM fiber generates a compressed pulse output therefrom. An input mode converter is used to convert the created continuum from the fundamental mode associated with the conventional continuum sources to the higher-order mode(s) supported by the HOM fiber used to perform pulse compression. A bandpass filter is used to limit the bandwidth of the continuum signal to that associated with both the efficient conversion range of the mode converter and desired dispersion characteristic of the HOM fiber.
    Type: Application
    Filed: August 31, 2009
    Publication date: March 3, 2011
    Inventors: Jeffrey W. Nicholson, Siddharth Ramachandran
  • Patent number: 7865045
    Abstract: The specification describes optical devices and related methods wherein an input mode is converted by multiple LPG mode transformers to produce an output with multiple predetermined modes.
    Type: Grant
    Filed: June 9, 2008
    Date of Patent: January 4, 2011
    Assignee: OFS Fitel, LLC
    Inventors: Siddharth Ramachandran, Mikhail Sumetsky, Paul S. Westbrook
  • Publication number: 20100303402
    Abstract: A phase-engineered fiber is described for generating a cylindrically polarized beam. The fiber includes a core region, a ring region surrounding the core region, and an outer cladding region surrounding the ring region. The fiber regions are configured to cause the fiber to have a refractive index step proximate to the peak amplitude value of the mode intensity profile of an LP11 mode guided by the fiber. The refractive index step is sufficiently steep such that at least one of the cylindrically polarized TM01 and TE01 eigenmodes has an effective refractive index neff that is sufficiently separated from the respective effective refractive index of the other eigenmodes to allow coupling to the at least one cylindrically polarized eigenmode with minimal coupling to the other eigenmodes.
    Type: Application
    Filed: August 10, 2010
    Publication date: December 2, 2010
    Applicant: OFS FITEL LLC
    Inventor: Siddharth Ramachandran
  • Patent number: 7826499
    Abstract: An all-fiber supercontinuum source is formed as a hybrid combination of a first section of continuum-generating fiber (such as, for example, highly-nonlinear fiber (HNLF)) spliced to a second section of continuum-extending fiber (such as, for example, photonic crystal fiber (PCF)). The second section of fiber is selected to exhibit an anomalous dispersion value in the region of the short wavelength edge of the continuum generated by the first section of fiber. A femtosecond pulse laser source may be used to supply input pulses to the section of HNLF, and the section of PCF is spliced to the termination of the section of HNLF. A section of single mode fiber (SMF) is preferably inserted between the output of the laser source and the HNLF to compress the femtosecond pulses prior to entering the HNLF.
    Type: Grant
    Filed: August 2, 2007
    Date of Patent: November 2, 2010
    Assignee: OFS Fitel LLC
    Inventors: Jeffrey W. Nicholson, Siddharth Ramachandran
  • Patent number: 7817258
    Abstract: The output modal content of optical fibers that contain more than one spatial mode may be analyzed and quantified by measuring interference between co-propagating modes in the optical fiber. By spatially resolving the interference, an image of the spatial beat pattern between two modes may be constructed, thereby providing information about the modes supported by the optical fiber.
    Type: Grant
    Filed: June 20, 2008
    Date of Patent: October 19, 2010
    Assignee: OFS Fitel LLC
    Inventors: Poul Kristensen, Jeffrey W. Nicholson, Siddharth Ramachandran, Andrew D. Yablon
  • Publication number: 20100103959
    Abstract: The present disclosure provides an approach to more efficiently amplify signals by matching either the gain materials or the pump profile with the signal profile for a higher-order mode (HOM) signal. By doing so, more efficient energy extraction is achieved.
    Type: Application
    Filed: February 5, 2008
    Publication date: April 29, 2010
    Applicant: FURUKAWA ELECTRIC NORTH AMERICA, INC.
    Inventors: David J Digiovanni, Siddharth Ramachandran
  • Patent number: 7672552
    Abstract: A mode conversion technique to convert higher-order-mode into a nearly fundamental Gaussian shape by using a beam expander is developed and is particularly useful in high-power lasers and amplifiers. By using a beam expander between a transmitted fiber and a conventional mode conversion system, the strict lateral tolerance requirement can be overcome with high conversion efficiency.
    Type: Grant
    Filed: March 6, 2008
    Date of Patent: March 2, 2010
    Assignee: Furukawa Electric North America, Inc.
    Inventors: Gerd Leuchs, Norbert Lindlein, Siddharth Ramachandran
  • Publication number: 20100034500
    Abstract: Disclosed are multi-stage optical amplifiers that propagate higher-order mode (HOM) signals. One embodiment, among others, comprises a first segment of optical fiber in which a first HOM signal propagates, a second segment of optical fiber in which a second HOM signal propagates, and a mode converter that converts the first HOM signal into the second HOM signal.
    Type: Application
    Filed: February 5, 2008
    Publication date: February 11, 2010
    Applicant: FURUKAWA ELECTRIC NORTH AMERICA, INC.
    Inventors: David J. Digiovanni, Siddharth Ramachandran
  • Publication number: 20100014820
    Abstract: Disclosed are optical fiber devices incorporating optical fibers with total dispersion greater than material dispersion, and with preferred dispersion values less than +50 ps/nm-km. The desired dispersion values are obtained when light resides substantially in a single higher order mode (HOM) of the fiber, typically the LP02 mode. The optical fibers also preferably have substantial separation between the effective indices of the HOM and any other mode.
    Type: Application
    Filed: June 20, 2008
    Publication date: January 21, 2010
    Inventor: Siddharth Ramachandran
  • Publication number: 20100008664
    Abstract: When transmitting in higher-order modes (HOMs), the chances of dielectric breakdown in the bulk glass can be reduced by judicious selection of the mode of transmission. Since energy distributions in the HOM profile change with the mode order, one can calculate the peak intensity for any given HOM. Correspondingly, one can calculate whether any portion of the transmitted pulse will exceed the breakdown threshold for the optical fiber through which the HOM signal is being transmitted. Should the calculated energy exceed the dielectric breakdown threshold, another HOM with a lower peak intensity can be selected for signal transmission. Disclosed are systems and methods for selecting an appropriate HOM to reduce the likelihood of dielectric breakdown.
    Type: Application
    Filed: February 5, 2008
    Publication date: January 14, 2010
    Applicant: FURUKAWA ELECTRIC NORTH AMERICA, INC.
    Inventors: Siddharth Ramachandran, Andrew D. Yablon
  • Publication number: 20100008633
    Abstract: The present disclosure provides an approach to more efficiently amplify signals by matching either the gain materials or the pump profile with the signal profile for a higher-order mode (HOM) signal. By doing so, more efficient energy extraction is achieved.
    Type: Application
    Filed: February 5, 2008
    Publication date: January 14, 2010
    Applicant: FURUKAWA ELECTRIC NORTH AMERICA, INC.
    Inventors: David J. Digiovanni, Siddharth Ramachandran, Samir Ghalmi, Marc Mermelstein
  • Publication number: 20100002992
    Abstract: The present disclosure provides an approach to more efficiently amplify signals by matching either the gain materials or the pump profile with the signal profile for a higher-order mode (HOM) signal. By doing so, more efficient energy extraction is achieved.
    Type: Application
    Filed: February 5, 2008
    Publication date: January 7, 2010
    Applicant: FURUKAWA ELECTRIC NORTH AMERICA, INC.
    Inventor: Siddharth Ramachandran
  • Publication number: 20090274417
    Abstract: Described is an optical fiber system for delivering ultrashort pulses with minimal distortions due to nonlinearity. The system is based on delivering the optical pulses in a higher order mode (HOM) of a few-moded fiber. The fiber is designed so that the dispersion for the HOM is very large. This results in a dispersion length LD for the delivery fiber that is exceptionally small, preferably less than the non-linear length LNL. Under these conditions the system may be designed so the optical pulses experience minimum non-linear impairment, and short pulse/high peak power levels are reproduced at the output of the delivery fiber.
    Type: Application
    Filed: July 1, 2009
    Publication date: November 5, 2009
    Inventors: Siddharth Ramachandran, Stephen Wielandy
  • Publication number: 20090257711
    Abstract: A technique is described for generating a Bessel beam. An input optical fiber is provided that supports propagation in the fundamental mode. The input fiber is connected to a fiber mode converting device that provides phase matching, at a predetermined excitation wavelength, between the fundamental mode and a selected azimuthally symmetric higher-order mode. As an input to the fiber mode converting device, a coherent light beam is fed through the input optical fiber to provide a fundamental mode input at the excitation wavelength. The fiber mode converting device resonantly excites the selected azimuthally symmetric mode. The azimuthally symmetric mode is provided as a beam output from an endface of the fiber mode converting device to approximate a Bessel beam.
    Type: Application
    Filed: March 5, 2009
    Publication date: October 15, 2009
    Applicant: OFS FITEL LLC
    Inventor: Siddharth Ramachandran