Mingming Tan
Aston University
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Publication
Featured researches published by Mingming Tan.
Optics Letters | 2013
Scott Watson; Mingming Tan; Stephen P. Najda; Piotr Perlin; M. Leszczynski; G. Targowski; Szymon Grzanka; Anthony E. Kelly
Visible light communications using a Gallium-nitride (GaN) laser diode is reported. Devices, which are cased in TO packages, show modulation bandwidths of up to 1.4 GHz. We demonstrate error-free data transmission, defined as transmission of 1×10(-9) bits without any errors, at 2.5 Gbit/s with a sensitivity of 11.5 dBm.
optical fiber communication conference | 2014
Ian Phillips; Mingming Tan; Marc Stephens; Mary Elizabeth McCarthy; Elias Giacoumidis; Stylianos Sygletos; Pawel Rosa; Simon Fabbri; Son Thai Le; Thavamaran Kanesan; Sergei K. Turitsyn; Nick Doran; Paul Harper; Andrew D. Ellis
We demonstrate that a combination of Raman laser based amplification and optical phase conjugation enables transmission beyond the nonlinear-Shannon limit. We show nonlinear compensation of 7×114Gbit/s DP-QPSK channels, increasing system reach by 30%.
Optics Express | 2016
Mingming Tan; Pawel Rosa; Son Thai Le; Md. A. Iqbal; I. D. Phillips; Paul Harper
We demonstrate that a distributed Raman amplification scheme based on random distributed feedback (DFB) fiber laser enables bidirectional second-order Raman pumping without increasing relative intensity noise (RIN) of the signal. This extends the reach of 10 × 116 Gb/s DP-QPSK WDM transmission up to 7915 km, compared with conventional Raman amplification schemes. Moreover, this scheme gives the longest maximum transmission distance among all the Raman amplification schemes presented in this paper, whilst maintaining relatively uniform and symmetric signal power distribution, and is also adjustable in order to be highly compatible with different nonlinearity compensation techniques, including mid-link optical phase conjugation (OPC) and nonlinear Fourier transform (NFT).
Optics Express | 2015
Mingming Tan; Pawel Rosa; Son Thai Le; Ian Phillips; Paul Harper
We present, for the first time, a detailed investigation of the impact of second order co-propagating Raman pumping on long-haul 100G WDM DP-QPSK coherent transmission of up to 7082 km using Raman fibre laser based configurations. Signal power and noise distributions along the fibre for each pumping scheme were characterised both numerically and experimentally. Based on these pumping schemes, the Q factor penalties versus co-pump power ratios were experimentally measured and quantified. A significant Q factor penalty of up to 4.15 dB was observed after 1666 km using symmetric bidirectional pumping, compared with counter-pumping only. Our results show that whilst using co-pumping minimises the intra-cavity signal power variation and amplification noise, the Q factor penalty with co-pumping was too great for any advantage to be seen. The relative intensity noise (RIN) characteristics of the induced fibre laser and the output signal, and the intra-cavity RF spectra of the fibre laser are also presented. We attribute the Q factor degradation to RIN induced penalty due to RIN being transferred from the first order fibre laser and second order co-pump to the signal. More importantly, there were two different fibre lasing regimes contributing to the amplification. It was random distributed feedback lasing when using counter-pumping only and conventional Fabry-Perot cavity lasing when using all bidirectional pumping schemes. This also results in significantly different performances due to different laser cavity lengths for these two classes of laser.
Journal of Lightwave Technology | 2016
Andrew D. Ellis; Mingming Tan; Asif Iqbal; Mohammad Ahmad Zaki Al-Khateeb; Vladimir Gordienko; Gabriel Saavedra Mondaca; Simon Fabbri; Marc Stephens; Mary Elizabeth McCarthy; Andreas Perentos; Ian Phillips; Domanic Lavery; Gabriele Liga; Robert Maher; Paul Harper; Nick Doran; Sergei K. Turitsyn; Stylianos Sygletos; Polina Bayvel
In this paper, we experimentally demonstrate the benefit of polarization insensitive dual-band optical phase conjugation for up to ten 400 Gb/s optical super-channels using a Raman amplified transmission link with a realistic span length of 75 km. We demonstrate that the resultant increase in transmission distance may be predicted analytically if the detrimental impacts of power asymmetry and polarization mode dispersion are taken into account.
optical fiber communication conference | 2015
Mingming Tan; Pawel Rosa; I. D. Phillips; Paul Harper
We propose a novel random DFB fiber laser based Raman amplification using bidirectional second-order pumping. This extends the reach of 116 Gb/s DP-QPSK WDM transmission up to 7915 km, compared with other Raman amplification techniques.
Optics Express | 2014
Marc Stephens; Mingming Tan; Ian Phillips; Stylianos Sygletos; Paul Harper; Nick Doran
Optical phase conjugation (OPC) of a polarization-multiplexed comb of 10x114Gb/s DP-QPSK signals has been demonstrated for the first time, occupying a spectral bandwidth of >1 THz (~9 nm). The nonlinear element employed for the OPC was highly nonlinear fiber (HNLF) optimized for the suppression of stimulated Brillouin scattering (SBS) and configured in a bi-directional loop offering polarization diversity. Pump power (each way about the loop) and input signal power to the OPC subsystem were optimized at 29.7 dBm and + 3 dBm respectively producing a Q(2) penalty of ≤ 0.9 dB over all conjugate wavelengths, polarizations and output OSNR (up to 20 dB).
Optics Letters | 2015
Lidia Galdino; Mingming Tan; Domanic Lavery; Pawel Rosa; Robert Maher; Ian Phillips; Juan Diego Ania Castañón; Paul Harper; Robert I. Killey; Benn C. Thomsen; Sergejs Makovejs; Polina Bayvel
Transmission of a net 467-Gb/s PDM-16QAM Nyquist-spaced superchannel is reported with an intra-superchannel net spectral efficiency (SE) of 6.6 (b/s)/Hz, over 364-km SMF-28 ULL ultra-low loss optical fiber, enabled by bi-directional second-order Raman amplification and digital nonlinearity compensation. Multi-channel digital back-propagation (MC-DBP) was applied to compensate for nonlinear interference; an improvement of 2 dB in Q(2) factor was achieved when 70-GHz DBP bandwidth was applied, allowing an increase in span length of 37 km.
Journal of Lightwave Technology | 2016
Lidia Galdino; Mingming Tan; Alex Alvarado; Domanic Lavery; Pawel Rosa; Robert Maher; Juan Diego Ania-Castañón; Paul Harper; Sergejs Makovejs; Benn C. Thomsen; Polina Bayvel
The performance of unrepeatered transmission of a seven Nyquist-spaced 10 GBd PDM-16QAM superchannel using full signal band coherent detection and multi-channel digital back propagation (MC-DBP) to mitigate nonlinear effects is analysed. For the first time in unrepeatered transmission, the performance of two amplification systems is investigated and directly compared in terms of achievable information rates (AIRs): 1) erbium-doped fibre amplifier (EDFA) and 2) second-order bidirectional Raman pumped amplification. The experiment is performed over different span lengths, demonstrating that, for an AIR of 6.8 bit/s/Hz, the Raman system enables an increase of 93 km (36 %) in span length. Further, at these distances, MC-DBP gives an improvement in AIR of 1 bit/s/Hz (to 7.8 bit/s/Hz) for both amplification schemes. The theoretical AIR gains for Raman and MC-DBP are shown to be preserved when considering low-density parity-check codes. Additionally, MC-DBP algorithms for both amplification schemes are compared in terms of performance and computational complexity. It is shown that to achieve the maximum MC-DBP gain, the Raman system requires approximately four times the computational complexity due to the distributed impact of fibre nonlinearity.
IEEE Photonics Technology Letters | 2015
Pawel Rosa; Mingming Tan; Son Thai Le; Ian D. Philips; Juan Diego Ania-Castañón; Stylianos Sygletos; Paul Harper
Unrepeatered 100 Gbit/s per channel wave-divisionmultiplexed dual-polarization-QPSK transmission with random distributed feedback fiber laser-based Raman amplification using fiber Bragg grating is demonstrated. Transmission of 1.4 Tb/s (14 × 100 Gbit/s) was possible in 352.8 km link and 2.2 Tb/s (22 × 100 Gbit/s) was achieved in 327.6 km without employing remote optically pumped amplifier or speciality fibers.