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4 × 28 Gbaud PAM4 integrated ROSA with high-sensitivity APD | IEEE Conference Publication | IEEE Xplore

4 × 28 Gbaud PAM4 integrated ROSA with high-sensitivity APD


Abstract:

We demonstrate the first 4 × 28 Gbaud PAM4 data reception with an integrated APD-ROSA. A minimum receiver sensitivity of ™21.2dBm OMA of the inner-eye was obtained, which...Show More

Abstract:

We demonstrate the first 4 × 28 Gbaud PAM4 data reception with an integrated APD-ROSA. A minimum receiver sensitivity of ™21.2dBm OMA of the inner-eye was obtained, which enable us to achieve 30-km transmission, assuming a SSMF.
Date of Conference: 28 June 2015 - 02 July 2015
Date Added to IEEE Xplore: 03 December 2015
Electronic ISBN:978-1-4673-7944-1
Electronic ISSN: 2166-8892
Conference Location: Shanghai, China
Citations are not available for this document.

I. Introduction

Datacom internet traffic is rapidly increasing with the large demand for cloud computing, video streaming, and mobile services. For the standardization of 400 gigabit Ethernet (400 GbE), IEEE is currently discussing its baud rate and modulation format. A pulse amplitude modulation with 4-level amplitude (PAM4) is promising because multi-level modulations can increase bit-rate without increasing baud rate, consequently a practical integrated optical module for 400 GbE can be produced by using mature techniques in current 100-GbE transceivers. To achieve error-free operation, a receiver for the PAM4 signal requires a high signal-to-noise ratio (SNR) compared with that for the non-return-to-zero (NRZ) signal, because the PAM4 signal has a modulation penalty of around 4.8 dB. Moreover, crucial issues in further spreading the 400-GbE transceiver are its size and power consumption. A small, high-sensitivity optical module with low power consumption is indispensable for improving port density on line cards and reducing installation space of equipment in buildings such as data centers. In the optical devices, both the avalanche photodiode (APD) and the semiconductor optical amplifier (SOA) can give a high gain. Especially APD shows promising characteristics for achieving low-power-consumption receiver with a small footprint, unlike SOAs [1], [2].

Cites in Papers - |

Cites in Papers - IEEE (2)

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1.
Syed Murshid, Engin Eyceyurt, Swaroopini Harish, Bilas Chowdhury, "Combining simplified PAM4 & SDM to quadruple data rate", 2020 IEEE Photonics Conference (IPC), pp.1-2, 2020.
2.
Nobuo Ohata, Harunaka Yamaguchi, Tadayoshi Hata, Ryota Takemura, Toshihide Oka, Shuhei Yamamoto, Ryota Fujihara, Satoshi Kajiya, Eitaro Ishimura, "A Compact Integrated Receiver Optical Sub-Assembly With High Sensitivity and Low Crosstalk for 100 Gb/s Ethernet Systems", Journal of Lightwave Technology, vol.37, no.19, pp.5034-5040, 2019.

Cites in Papers - Other Publishers (5)

1.
Ce Su, Bilas Chowdhury, Swaroopini Harish, Mingxuan Tu, Syed Murshid, "Spatial multiplexing and optical PAM4 quadruple the date rate in optical fiber systems", Applied Optics, vol.61, no.35, pp.10582, 2022.
2.
Yoshiyuki Doi, Toshihide Yoshimatsu, Yasuhiko Nakanishi, "Progress in Multi-wavelength Receiver Integration with Arrayed Waveguide Gratings", NTT Technical Review, vol.19, no.4, pp.47, 2021.
3.
Bilas Chowdhury, Ahmad Atieh, Engin Eyceyurt, Syed Murshid, "Design of a low cost and power efficient 200/400 Gbps optical interconnect using DAC-less simplified PAM4 architecture", Journal of Optical Communications, vol.0, no.0, 2021.
4.
Masahiro Nada, Toshihide Yoshimatsu, Fumito Nakajima, Hideaki Matsuzaki, Kimikazu Sano, "High-speed Avalanche Photodiodes toward 100-Gbit/s per Lambda Era", NTT Technical Review, vol.16, no.11, pp.45, 2018.
5.
Y. Sone, H. Nishizawa, S. Yamamoto, M. Fukutoku, T. Yoshimatsu, "Systems and technologies for high-speed inter-office/datacenter interface", Next-Generation Optical Networks for Data Centers and Short-Reach Links IV, vol.10131, pp.101310D, 2017.
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References

References is not available for this document.