The Experts below are selected from a list of 252 Experts worldwide ranked by ideXlab platform

Sergei K. Turitsyn - One of the best experts on this subject based on the ideXlab platform.

  • Quasi-lossless optical links for broad-band transmission and data processing
    IEEE Photonics Technology Letters, 2016
    Co-Authors: T.j. Ellingham, Juan Diego Ania-castanon, Robin A. Ibbotson, Xianfeng Chen, Lin Zhang, Sergei K. Turitsyn
    Abstract:

    We present the first experimental implementation of a recently designed quasi-lossless Fiber Span with strongly reduced signal power excursion. The resulting Fiber waveguide medium can be advantageously used both in lightwave communications and in all-optical nonlinear data processing.

  • Ultralong Raman Fiber Lasers as Virtually Lossless Optical Media
    Physical Review Letters, 2006
    Co-Authors: Juan Diego Ania-castanon, T.j. Ellingham, Robin A. Ibbotson, Xianfeng Chen, Lin Zhang, Sergei K. Turitsyn
    Abstract:

    By transforming the optical Fiber Span into an ultralong cavity laser, we experimentally demonstrate quasilossless transmission over long (up to 75 km) distances and virtually zero signal power variation over shorter (up to 20 km) Spans, opening the way for the practical implementation of integrable nonlinear systems in optical Fiber. As a by-product of our technique, the longest ever laser (to the best of our knowledge) has been implemented, with a cavity length of 75 km. A simple theory of the lossless Fiber Span, in excellent agreement with the observed results, is presented.

  • ultralong raman Fiber lasers as virtually lossless optical media
    Physical Review Letters, 2006
    Co-Authors: Juan Diego Aniacastanon, T.j. Ellingham, Robin A. Ibbotson, Xianfeng Chen, Lin Zhang, Sergei K. Turitsyn
    Abstract:

    By transforming the optical Fiber Span into an ultralong cavity laser, we experimentally demonstrate quasilossless transmission over long (up to 75 km) distances and virtually zero signal power variation over shorter (up to 20 km) Spans, opening the way for the practical implementation of integrable nonlinear systems in optical Fiber. As a by-product of our technique, the longest ever laser (to the best of our knowledge) has been implemented, with a cavity length of 75 km. A simple theory of the lossless Fiber Span, in excellent agreement with the observed results, is presented. © 2006 The American Physical Society.

Juan Diego Aniacastanon - One of the best experts on this subject based on the ideXlab platform.

  • link optimization for dwdm transmission with an optical phase conjugation
    Optics Express, 2016
    Co-Authors: Pawel Rosa, Giuseppe Rizzelli, Juan Diego Aniacastanon
    Abstract:

    We characterize in-Span signal power asymmetry in random distributed feedback ultralong Raman laser-amplified WDM transmission and numerically optimize Fiber Span length and operating band to achieve the lowest inter-Span signal power asymmetry between transmitted and optically conjugated channels in systems relying upon mid-link optical conjugation to combat Fiber nonlinear impairments.

  • ultralong raman Fiber lasers as virtually lossless optical media
    Physical Review Letters, 2006
    Co-Authors: Juan Diego Aniacastanon, T.j. Ellingham, Robin A. Ibbotson, Xianfeng Chen, Lin Zhang, Sergei K. Turitsyn
    Abstract:

    By transforming the optical Fiber Span into an ultralong cavity laser, we experimentally demonstrate quasilossless transmission over long (up to 75 km) distances and virtually zero signal power variation over shorter (up to 20 km) Spans, opening the way for the practical implementation of integrable nonlinear systems in optical Fiber. As a by-product of our technique, the longest ever laser (to the best of our knowledge) has been implemented, with a cavity length of 75 km. A simple theory of the lossless Fiber Span, in excellent agreement with the observed results, is presented. © 2006 The American Physical Society.

T.j. Ellingham - One of the best experts on this subject based on the ideXlab platform.

  • Quasi-lossless optical links for broad-band transmission and data processing
    IEEE Photonics Technology Letters, 2016
    Co-Authors: T.j. Ellingham, Juan Diego Ania-castanon, Robin A. Ibbotson, Xianfeng Chen, Lin Zhang, Sergei K. Turitsyn
    Abstract:

    We present the first experimental implementation of a recently designed quasi-lossless Fiber Span with strongly reduced signal power excursion. The resulting Fiber waveguide medium can be advantageously used both in lightwave communications and in all-optical nonlinear data processing.

  • Ultralong Raman Fiber Lasers as Virtually Lossless Optical Media
    Physical Review Letters, 2006
    Co-Authors: Juan Diego Ania-castanon, T.j. Ellingham, Robin A. Ibbotson, Xianfeng Chen, Lin Zhang, Sergei K. Turitsyn
    Abstract:

    By transforming the optical Fiber Span into an ultralong cavity laser, we experimentally demonstrate quasilossless transmission over long (up to 75 km) distances and virtually zero signal power variation over shorter (up to 20 km) Spans, opening the way for the practical implementation of integrable nonlinear systems in optical Fiber. As a by-product of our technique, the longest ever laser (to the best of our knowledge) has been implemented, with a cavity length of 75 km. A simple theory of the lossless Fiber Span, in excellent agreement with the observed results, is presented.

  • ultralong raman Fiber lasers as virtually lossless optical media
    Physical Review Letters, 2006
    Co-Authors: Juan Diego Aniacastanon, T.j. Ellingham, Robin A. Ibbotson, Xianfeng Chen, Lin Zhang, Sergei K. Turitsyn
    Abstract:

    By transforming the optical Fiber Span into an ultralong cavity laser, we experimentally demonstrate quasilossless transmission over long (up to 75 km) distances and virtually zero signal power variation over shorter (up to 20 km) Spans, opening the way for the practical implementation of integrable nonlinear systems in optical Fiber. As a by-product of our technique, the longest ever laser (to the best of our knowledge) has been implemented, with a cavity length of 75 km. A simple theory of the lossless Fiber Span, in excellent agreement with the observed results, is presented. © 2006 The American Physical Society.

Robin A. Ibbotson - One of the best experts on this subject based on the ideXlab platform.

  • Quasi-lossless optical links for broad-band transmission and data processing
    IEEE Photonics Technology Letters, 2016
    Co-Authors: T.j. Ellingham, Juan Diego Ania-castanon, Robin A. Ibbotson, Xianfeng Chen, Lin Zhang, Sergei K. Turitsyn
    Abstract:

    We present the first experimental implementation of a recently designed quasi-lossless Fiber Span with strongly reduced signal power excursion. The resulting Fiber waveguide medium can be advantageously used both in lightwave communications and in all-optical nonlinear data processing.

  • Ultralong Raman Fiber Lasers as Virtually Lossless Optical Media
    Physical Review Letters, 2006
    Co-Authors: Juan Diego Ania-castanon, T.j. Ellingham, Robin A. Ibbotson, Xianfeng Chen, Lin Zhang, Sergei K. Turitsyn
    Abstract:

    By transforming the optical Fiber Span into an ultralong cavity laser, we experimentally demonstrate quasilossless transmission over long (up to 75 km) distances and virtually zero signal power variation over shorter (up to 20 km) Spans, opening the way for the practical implementation of integrable nonlinear systems in optical Fiber. As a by-product of our technique, the longest ever laser (to the best of our knowledge) has been implemented, with a cavity length of 75 km. A simple theory of the lossless Fiber Span, in excellent agreement with the observed results, is presented.

  • ultralong raman Fiber lasers as virtually lossless optical media
    Physical Review Letters, 2006
    Co-Authors: Juan Diego Aniacastanon, T.j. Ellingham, Robin A. Ibbotson, Xianfeng Chen, Lin Zhang, Sergei K. Turitsyn
    Abstract:

    By transforming the optical Fiber Span into an ultralong cavity laser, we experimentally demonstrate quasilossless transmission over long (up to 75 km) distances and virtually zero signal power variation over shorter (up to 20 km) Spans, opening the way for the practical implementation of integrable nonlinear systems in optical Fiber. As a by-product of our technique, the longest ever laser (to the best of our knowledge) has been implemented, with a cavity length of 75 km. A simple theory of the lossless Fiber Span, in excellent agreement with the observed results, is presented. © 2006 The American Physical Society.

Lin Zhang - One of the best experts on this subject based on the ideXlab platform.

  • Quasi-lossless optical links for broad-band transmission and data processing
    IEEE Photonics Technology Letters, 2016
    Co-Authors: T.j. Ellingham, Juan Diego Ania-castanon, Robin A. Ibbotson, Xianfeng Chen, Lin Zhang, Sergei K. Turitsyn
    Abstract:

    We present the first experimental implementation of a recently designed quasi-lossless Fiber Span with strongly reduced signal power excursion. The resulting Fiber waveguide medium can be advantageously used both in lightwave communications and in all-optical nonlinear data processing.

  • Ultralong Raman Fiber Lasers as Virtually Lossless Optical Media
    Physical Review Letters, 2006
    Co-Authors: Juan Diego Ania-castanon, T.j. Ellingham, Robin A. Ibbotson, Xianfeng Chen, Lin Zhang, Sergei K. Turitsyn
    Abstract:

    By transforming the optical Fiber Span into an ultralong cavity laser, we experimentally demonstrate quasilossless transmission over long (up to 75 km) distances and virtually zero signal power variation over shorter (up to 20 km) Spans, opening the way for the practical implementation of integrable nonlinear systems in optical Fiber. As a by-product of our technique, the longest ever laser (to the best of our knowledge) has been implemented, with a cavity length of 75 km. A simple theory of the lossless Fiber Span, in excellent agreement with the observed results, is presented.

  • ultralong raman Fiber lasers as virtually lossless optical media
    Physical Review Letters, 2006
    Co-Authors: Juan Diego Aniacastanon, T.j. Ellingham, Robin A. Ibbotson, Xianfeng Chen, Lin Zhang, Sergei K. Turitsyn
    Abstract:

    By transforming the optical Fiber Span into an ultralong cavity laser, we experimentally demonstrate quasilossless transmission over long (up to 75 km) distances and virtually zero signal power variation over shorter (up to 20 km) Spans, opening the way for the practical implementation of integrable nonlinear systems in optical Fiber. As a by-product of our technique, the longest ever laser (to the best of our knowledge) has been implemented, with a cavity length of 75 km. A simple theory of the lossless Fiber Span, in excellent agreement with the observed results, is presented. © 2006 The American Physical Society.