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Dive into the research topics where Hans Christian Hansen Mulvad is active.

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Featured researches published by Hans Christian Hansen Mulvad.


Optics Express | 2009

Breakthrough switching speed with an all-optical chalcogenide glass chip: 640 Gbit/s demultiplexing

Michael Galili; Jing Xu; Hans Christian Hansen Mulvad; Leif Katsuo Oxenløwe; Anders Clausen; Palle Jeppesen; Barry Luther-Davies; Steve Madden; Andrei Rode; Duk-Yong Choi; Mark Pelusi; Feng Luan; Benjamin J. Eggleton

We report the first demonstration of error-free 640 Gbit/s demultiplexing using the Kerr non-linearity of an only 5 cm long chalcogenide glass waveguide chip. Our approach exploits four-wave mixing by the instantaneous nonlinear response of chalcogenide. Excellent performance is achieved with only 2 dB average power penalty and no indication of error-floor. Characterisation of the FWM efficiency for the chalcogenide waveguide is given and confirms the good performance of the device.


Optics Express | 2010

Demonstration of 5.1 Tbit/s data capacity on a single-wavelength channel.

Hans Christian Hansen Mulvad; Michael Galili; Leif Katsuo Oxenløwe; Hao Hu; Anders Clausen; Jesper B. Jensen; Christophe Peucheret; Palle Jeppesen

We have generated a single-wavelength data signal with a data capacity of 5.1 Tbit/s. The enabling techniques to generate the data signal are optical time-division multiplexing up to a symbol rate of 1.28 Tbaud, differential quadrature phase shift keying as data format, and polarisation-multiplexing. For the first time, error-free performance with a bit error rate less than 10(-9) is demonstrated for the 5.1 Tbit/s data signal. This is achieved in a back-to-back configuration using a direct detection receiver based on polarisation- and time-demultiplexing, delay-demodulation and balanced photo-detection.


Optics Express | 2010

640 Gbit/s and 1.28 Tbit/s polarisation insensitive all optical wavelength conversion

Hao Hu; Evarist Palushani; Michael Galili; Hans Christian Hansen Mulvad; Anders Clausen; Leif Katsuo Oxenløwe; Palle Jeppesen

We report the first demonstration of polarisation insensitive all-optical wavelength conversion (AOWC) for single wavelength channel 640 Gbit/s return-to-zero differential-phase-shift-keying (RZ-DPSK) signal and 1.28 Tbit/s polarisation multiplexed (Pol-Mux) RZ-DPSK signals using a 100-m polarisation-maintaining highly nonlinear fiber (PM-HNLF) in a polarisation diversity loop configuration. The AOWC is based on four-wave mixing in PM-HNLF. Error free performance is achieved for the wavelength converted signals. Less than 0.5 dB polarisation sensitivity is obtained.


Optics Express | 2011

Ultra-high-speed wavelength conversion in a silicon photonic chip

Hao Hu; Hua Ji; Michael Galili; Minhao Pu; Christophe Peucheret; Hans Christian Hansen Mulvad; Kresten Yvind; Jørn Märcher Hvam; Palle Jeppesen; Leif Katsuo Oxenløwe

We have successfully demonstrated all-optical wavelength conversion of a 640-Gbit/s line-rate return-to-zero differential phase-shift keying (RZ-DPSK) signal based on low-power four wave mixing (FWM) in a silicon photonic chip with a switching energy of only ~110 fJ/bit. The waveguide dispersion of the silicon nanowire is nano-engineered to optimize phase matching for FWM and the switching power used for the signal processing is low enough to reduce nonlinear absorption from two-photon-absorption (TPA). These results demonstrate that high-speed wavelength conversion is achievable in silicon chips with high data integrity and indicate that high-speed operation can be obtained at moderate power levels where nonlinear absorption due to TPA and free-carrier absorption (FCA) is not detrimental. This demonstration can potentially enable high-speed optical networks on a silicon photonic chip.


Optics Express | 2011

Ultra-high-speed optical serial-to-parallel data conversion by time-domain optical Fourier transformation in a silicon nanowire

Hans Christian Hansen Mulvad; Evarist Palushani; Hao Hu; Hua Ji; Mads Lillieholm; Michael Galili; Anders Clausen; Minhao Pu; Kresten Yvind; Jørn Märcher Hvam; Palle Jeppesen; Leif Katsuo Oxenløwe

We demonstrate conversion from 64 × 10 Gbit/s optical time-division multiplexed (OTDM) data to dense wavelength division multiplexed (DWDM) data with 25 GHz spacing. The conversion is achieved by time-domain optical Fourier transformation (OFT) based on four-wave mixing (FWM) in a 3.6 mm long silicon nanowire. A total of 40 out of 64 tributaries of a 64 × 10 Gbit/s OTDM-DPSK data signal are simultaneously converted with a bit-error rate (BER) performance below the 2 × 10(-3) FEC limit. Using a 50 m long highly nonlinear fiber (HNLF) for higher FWM conversion efficiency, 43 tributaries of a 64 × 10 Gbit/s OTDM-OOK data signal are converted with error-free performance (BER<10(-9)).


IEEE Journal of Selected Topics in Quantum Electronics | 2008

640 Gb/s Timing Jitter-Tolerant Data Processing Using a Long-Period Fiber-Grating-Based Flat-Top Pulse Shaper

Leif Katsuo Oxenløwe; Radan Slavík; Michael Galili; Hans Christian Hansen Mulvad; Anders Clausen; Yongwoo Park; José Azaña; Palle Jeppesen

We report on the use of a novel all-fiber flat-top pulse shaping technique for improving performance and timing jitter tolerance of a switch made for 640-10 Gb/s signal demultiplexing. The jitter tolerance is increased to almost 30% of the one-bit time window, and an increase of the receiver sensitivity by 13 dB compared to a nonflat-top pulse is reported.


Optics Express | 2011

10 GHz pulse source for 640 Gbit/s OTDM based on phase modulator and self-phase modulation.

Hao Hu; Hans Christian Hansen Mulvad; Christophe Peucheret; Michael Galili; Anders Clausen; Palle Jeppesen; Leif Katsuo Oxenløwe

We demonstrate a high-quality cavity-free 10 GHz 680 fs pulse source starting from a continuous wave (CW) laser. The pulse source is employed in a 640 Gbit/s on-off keying (OOK) OTDM data generation and demultiplexing experiment, where the error-free bit error rate (BER) performance confirms the high pulse quality. The pulse source is based on a linear pulse compression stage followed by two polarization-independent non-linear pulse compression stages. The linear pulse compression stage relies on a phase modulator, which is used to generate linear chirp and followed by a dispersive element to compensate the chirp. The non-linear pulse compression stages are based on self-phase modulation (SPM) in dispersion-flattened highly non-linear fibers (DF-HNLF). The pulse source is tunable over the C-band with negligible pedestal.


Optics Express | 2014

320 Gb/s Nyquist OTDM received by polarization-insensitive time-domain OFT

Hao Hu; Deming Kong; Evarist Palushani; Michael Galili; Hans Christian Hansen Mulvad; Leif Katsuo Oxenløwe

We have demonstrated the generation of a 320 Gb/s Nyquist-OTDM signal by rectangular filtering on an RZ-OTDM signal with the filter bandwidth (320 GHz) equal to the baud rate (320 Gbaud) and the reception of such a Nyquist-OTDM signal using polarization-insensitive time-domain optical Fourier transformation (TD-OFT) followed by passive filtering. After the time-to-frequency mapping in the TD-OFT, the Nyquist-OTDM signal with its characteristic sinc-shaped time-domain trace is converted into an orthogonal frequency division multiplexing (OFDM) signal with sinc-shaped spectra for each subcarrier. The subcarrier frequency spacing of the converted OFDM signal is designed to be larger than the transform-limited case, here 10 times greater than the symbol rate of each subcarrier. Therefore, only passive filtering is needed to extract the subcarriers of the converted OFDM signal. In addition, a polarization diversity scheme is used in the four-wave mixing (FWM) based TD-OFT, and less than 0.5 dB polarization sensitivity is demonstrated in the OTDM receiver.


optical fiber communication conference | 2011

Silicon chip based wavelength conversion of ultra-high repetition rate data signals

Hao Hu; Hua Ji; Michael Galili; Minhao Pu; Hans Christian Hansen Mulvad; Leif Katsuo Oxenløwe; Kresten Yvind; Jørn Märcher Hvam; Palle Jeppesen

We report on all-optical wavelength conversion of 160, 320 and 640 Gbit/s line-rate data signals using four-wave mixing in a 3.6 mm long silicon waveguide. Bit error rate measurements validate the performance within FEC limits.


optical fiber communication conference | 2015

A novel phase-locking-free phase sensitive amplifier based Regenerator

Niels-Kristian Kjøller; Kasper Meldgaard Røge; Pengyu Guan; Hans Christian Hansen Mulvad; Michael Galili; Leif Katsuo Oxenløwe

We propose and demonstrate a novel PSK regenerator based on phase sensitive amplification without active phase-locking. The scheme is applied to regenerate a phase noise degraded 10-Gbit/s DPSK signal, improving receiver sensitivity by 3.5 dB.

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Dive into the Hans Christian Hansen Mulvad's collaboration.

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Leif Katsuo Oxenløwe

Technical University of Denmark

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Michael Galili

Technical University of Denmark

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Hao Hu

Technical University of Denmark

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Palle Jeppesen

Technical University of Denmark

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Anders Clausen

Technical University of Denmark

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Evarist Palushani

Technical University of Denmark

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Hua Ji

Technical University of Denmark

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Pengyu Guan

Technical University of Denmark

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Minhao Pu

Technical University of Denmark

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Kasper Meldgaard Røge

Technical University of Denmark

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