Dual-Carrier Dual-Polarization IQ Modulator Using a Complementary Frequency Shifter | IEEE Journals & Magazine | IEEE Xplore

Dual-Carrier Dual-Polarization IQ Modulator Using a Complementary Frequency Shifter


Abstract:

We discuss the detailed characteristics of a dual-carrier dual-polarization (DP) in-phase-and-quadrature (IQ) modulator. As the dual-carrier generator, we used a compleme...Show More

Abstract:

We discuss the detailed characteristics of a dual-carrier dual-polarization (DP) in-phase-and-quadrature (IQ) modulator. As the dual-carrier generator, we used a complementary frequency shifter (CFS), which generates two frequency-spacing-locked optical subcarriers and outputs each of them from different output ports without any optical demultiplexers. We fabricated the modulator, which integrates a CFS, a quad-parallel IQ modulator, and a polarization-multiplexing circuit, with a hybrid configuration of silica planar lightwave circuits and a LiNbO3 chip. With the fabricated modulator, we demonstrated that the CFS enables us to flexibility change the relative and absolute optical frequencies of the subcarriers with a high isolation ratio of about 40 dB. We generated a 400-Gb/s dual-carrier DP 16-level quadrature amplitude modulation (16QAM) signal by driving the modulator with high-speed digital-to-analog converters.
Published in: IEEE Journal of Selected Topics in Quantum Electronics ( Volume: 19, Issue: 6, Nov.-Dec. 2013)
Article Sequence Number: 3400208
Date of Publication: 30 May 2013

ISSN Information:

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I. Introduction

To cope with the ever-increasing demands for data transmission capacity, technologies to achieve high per-channel data rates and high spectral efficiencies (SEs) in optical wavelength-division multiplexing (WDM) transmission systems are being investigated very actively [1]–[8]. While current systems with a per-channel rate of 100 Gb/s employ single-carrier dual-polarization quadrature phase-shift keying (DP-QPSK), future systems with per-channel rates of 400 Gb/s or higher will probably use multicarrier (or superchannel) approaches because achieving such high rates only by increasing baud rates and/or modulation levels with a single-carrier signal seems to be difficult. Actually, most recent large-capacity transmission experiments have been performed by using high-order modulation formats, such as quadrature amplitude modulation (QAM), and multicarrier transmission technologies, such as orthogonal frequency-division multiplexing (OFDM) or Nyquist wavelength-division multiplexing (Nyquist WDM), in combination [1]–[6].

Cites in Papers - |

Cites in Papers - IEEE (7)

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1.
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Cites in Papers - Other Publishers (9)

1.
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2.
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3.
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4.
Mehedi Hasan, Karin Hinzer, Trevor Hall, "A generalized circuit architecture for RF-photonic frequency multiplication with minimum RF energy", Journal of Modern Optics, pp.1, 2018.
5.
Mehedi Hasan, Jianqi Hu, Hamdam Nikkhah, Trevor Hall, "A photonic circuit for complementary frequency shifting, in-phase quadrature/single sideband modulation and frequency multiplication: analysis and integration feasibility", Journal of Modern Optics, pp.1, 2017.
6.
Hiroshi YAMAZAKI, Munehiko NAGATANI, Takashi GOH, Akihide SANO, Yutaka MIYAMOTO, "High-Speed Multilevel Optical Modulators with Silica-LiNbO3 Hybrid Configuration", The Review of Laser Engineering, vol.44, no.2, pp.111, 2016.
7.
Mehedi Hasan, Trevor J. Hall, "A photonic frequency octo-tupler with reduced RF drive power and extended spurious sideband suppression", Optics & Laser Technology, vol.81, pp.115, 2016.
8.
Hiroshi Yamazaki, Akihide Sano, Munehiko Nagatani, Yutaka Miyamoto, "Single-carrier 1-Tb/s PDM-16QAM transmission using high-speed InP MUX-DACs and an integrated OTDM modulator", Optics Express, vol.23, no.10, pp.12866, 2015.
9.
Hiroshi Yamazaki, Takashi Goh, Toshikazu Hashimoto, Akihide Sano, Yutaka Miyamoto, "Generation of 448-Gbps OTDM-PDM-16QAM signal with an integrated modulator using orthogonal CSRZ pulses", 2015 Optical Fiber Communications Conference and Exhibition (OFC), pp.1-3, 2015.
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References

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