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1.
Opt Express ; 18(25): 26686-94, 2010 Dec 06.
Article in English | MEDLINE | ID: mdl-21165019

ABSTRACT

We report the first demonstration of optical phase conjugation (OPC) transmission of phase encoded and wavelength-division multiplexed (WDM) signals by the Kerr effect in a planar structured waveguide. The phase conjugated electric field of the signal is produced by four wave mixing pumped by a CW laser during co-propagating with the signal in a highly nonlinear waveguide fabricated in As(2)S(3) glass. Experiments demonstrate the capability of the device to perform dispersion-free transmission through up to 225 km of standard single mode fiber for a 3 × 40 Gb/s WDM signal, with its channels encoded as return-to-zero differential phase shift keying and spaced either 100 or 200 GHz apart. This work represents an important milestone towards demonstrating advanced signal processing of high-speed and broadband optical signals in compact planar waveguides, with the potential for monolithic optical integration.


Subject(s)
Arsenicals/chemistry , Chalcogens/chemistry , Fiber Optic Technology/instrumentation , Models, Theoretical , Refractometry/instrumentation , Signal Processing, Computer-Assisted/instrumentation , Sulfides/chemistry , Telecommunications/instrumentation , Computer Simulation , Computer-Aided Design , Equipment Design , Equipment Failure Analysis , Glass/chemistry , Infrared Rays , Miniaturization
2.
Opt Express ; 18(16): 17252-61, 2010 Aug 02.
Article in English | MEDLINE | ID: mdl-20721113

ABSTRACT

We demonstrate chip-based Tbaud optical signal processing for all-optical performance monitoring, switching and demultiplexing based on the instantaneous Kerr nonlinearity in a dispersion-engineered As(2)S(3) planar waveguide. At the Tbaud transmitter, we use a THz bandwidth radio-frequency spectrum analyzer to perform all-optical performance monitoring and to optimize the optical time division multiplexing stages as well as mitigate impairments, for example, dispersion. At the Tbaud receiver, we demonstrate error-free demultiplexing of a 1.28 Tbit/s single wavelength, return-to-zero signal to 10 Gbit/s via four-wave mixing with negligible system penalty (< 0.5 dB). Excellent performance, including high four-wave mixing conversion efficiency and no indication of an error-floor, was achieved. Our results establish the feasibility of Tbaud signal processing using compact nonlinear planar waveguides for Tbit/s Ethernet applications.


Subject(s)
Fiber Optic Technology/instrumentation , Microwaves , Optical Devices , Radio Waves , Spectrum Analysis/methods , Telecommunications/instrumentation , Equipment Design , Photons , Signal Processing, Computer-Assisted
3.
Opt Express ; 18(4): 3938-45, 2010 Feb 15.
Article in English | MEDLINE | ID: mdl-20389406

ABSTRACT

We report the first demonstration of simultaneous multi-impairment monitoring at ultrahigh bitrates using a THz bandwidth photonic-chip-based radio-frequency (RF) spectrum analyzer. Our approach employs a 7 cm long, highly nonlinear (gamma approximately 9900 /W/km), dispersion engineered chalcogenide planar waveguide to capture the RF spectrum of an ultrafast 640 Gb/s signal, based on cross-phase modulation, from which we numerically retrieve the autocorrelation waveform. The relationship between the retrieved autocorrelation trace and signal impairments is exploited to simultaneously monitor dispersion, in-band optical signal to noise ratio (OSNR) and timing jitter from a single measurement. This novel approach also offers very high OSNR measurement dynamic range (> 30 dB) and is scalable to terabit data rates.


Subject(s)
Optical Devices , Photometry/instrumentation , Signal Processing, Computer-Assisted/instrumentation , Spectrum Analysis/instrumentation , Telecommunications/instrumentation , Equipment Design , Equipment Failure Analysis , Microwaves , Photons
4.
Opt Express ; 17(11): 9314-22, 2009 May 25.
Article in English | MEDLINE | ID: mdl-19466183

ABSTRACT

We report the first demonstration of the use of an RF spectrum analyser with multi-terahertz bandwidth to measure the properties of femtosecond optical pulses. A low distortion and broad measurement bandwidth of 2.78 THz (nearly two orders of magnitude greater than conventional opto-electronic analyzers) was achieved by using a 6 cm long As(2)S(3) chalcogenide waveguide designed for high Kerr nonlinearity and near zero dispersion. Measurements of pulses as short as 260 fs produced from a soliton-effect compressor reveal features not evident from the pulse's optical spectrum. We also applied an inverse Fourier transform numerically to the captured data to re-construct a time-domain waveform that resembled pulse measurement obtained from intensity autocorrelation.


Subject(s)
Chalcogens/chemistry , Signal Processing, Computer-Assisted/instrumentation , Terahertz Spectroscopy/instrumentation , Terahertz Spectroscopy/methods , Computer-Aided Design , Equipment Design , Equipment Failure Analysis , Radio Waves , Reproducibility of Results , Sensitivity and Specificity , Terahertz Radiation
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