Abstract

We demonstrate a real-time 25-Gb/s PON prototype with ethernet-PON MAC/PHY, O-band transmitter, and cost-effective APD receivers. With applying parasitic inductance and capacitance reduction, the frequency response of 25-Gb/s APD ROSA with TO46-pacakge is improved to support high receiver sensitivity around −25 dBm at the BER of 10−3. The 30 dB power budget of 25 Gb/s downstream is achieved at the BER of 10−3. With long-term ethernet packet transmission, 25 Gigabit and 10 Gigabit ethernet traffics are successfully transmitted through the 20-km SMF over 14 hour’s observation window. Furthermore, QoS and bandwidth re-assignment function of the 25-Gb/s PON prototype are successfully demonstrated with respect to residential, business and mobile backhaul services in ONUs.

© 2016 Optical Society of America

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References

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  1. 5G Vision and requirements, IMT2020 (5G) Promotion Group, 2014.
  2. IEEE P802.3ca 100G-EPON Task Force, “Physical layer specifications and management parameters for 25 Gb/s, 50 Gb/s, and 100 Gb/s passive optical networks,” ( http://www.ieee802.org/3/ca/ ).
  3. C. Knittle, “IEEE 100 Gb/s EPON,” in OFC 2016 (2016), paper Th1I.6.
  4. Z. Ye, S. Li, N. Cheng, and X. Liu, “Demonstration of high-performance cost-effective 100-Gb/s TWDM-PON using 4x25-Gb/s optical duobinary channels with 16-GHz APD and receiver-side post-equalization,” in ECOC 2015 (2015), paper Mo.3.4.4.
  5. V. Houtsma and D. van Veen, “Demonstration of 25 Gb/s TDM-PON with 31.5 dB optical power budget using only 10 Gb/s optical components,” in ECOC 2015 (2015), paper PD.4.3.
  6. J. Gao, “Demonstration of the first 29dB power budget of 25-Gb/s 4-PAM system without optical amplifier for next generation access network,” in OFC 2016 (2016), paper Th1I.2.
  7. S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
    [Crossref]
  8. S. Kaneko, T. Yoshida, S. Furusawa, M. Sarashina, H. Tamai, A. Suzuki, T. Mukojima, S. Kimura, and N. Yoshimoto, “Demonstration of load-balancing operation based on hitless dynamic wavelength allocation on symmetric 40-Gbit/s λ-tunable WDM/TDM-PON,” J. Lightwave Technol. 33(3), 645–652 (2015).
    [Crossref]
  9. D. Nesset, “NG-PON2 technology and standards,” J. Lightwave Technol. 33(5), 1136–1143 (2015).
    [Crossref]

2016 (1)

S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
[Crossref]

2015 (2)

Chung, H. S.

S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
[Crossref]

Doo, K.-H.

S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
[Crossref]

Furusawa, S.

Kaneko, S.

Kang, S.-K.

S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
[Crossref]

Kim, K.

S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
[Crossref]

Kimura, S.

Lee, E.-G.

S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
[Crossref]

Lee, H.

S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
[Crossref]

Lee, H. H.

S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
[Crossref]

Lee, J. C.

S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
[Crossref]

Lee, J. H.

S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
[Crossref]

S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
[Crossref]

Lee, S.

S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
[Crossref]

Mukojima, T.

Mun, S.-G.

S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
[Crossref]

Nesset, D.

Park, H.

S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
[Crossref]

Sarashina, M.

Suzuki, A.

Tamai, H.

Yoshida, T.

Yoshimoto, N.

ETRI J. (1)

S.-G. Mun, E.-G. Lee, J. H. Lee, H. Park, S.-K. Kang, H. H. Lee, K. Kim, K.-H. Doo, H. Lee, H. S. Chung, J. H. Lee, S. Lee, and J. C. Lee, “Demonstration of time- and wavelength-division multiplexed passive optical network based on VCSEL Array,” ETRI J. 38(1), 9–17 (2016).
[Crossref]

J. Lightwave Technol. (2)

Other (6)

5G Vision and requirements, IMT2020 (5G) Promotion Group, 2014.

IEEE P802.3ca 100G-EPON Task Force, “Physical layer specifications and management parameters for 25 Gb/s, 50 Gb/s, and 100 Gb/s passive optical networks,” ( http://www.ieee802.org/3/ca/ ).

C. Knittle, “IEEE 100 Gb/s EPON,” in OFC 2016 (2016), paper Th1I.6.

Z. Ye, S. Li, N. Cheng, and X. Liu, “Demonstration of high-performance cost-effective 100-Gb/s TWDM-PON using 4x25-Gb/s optical duobinary channels with 16-GHz APD and receiver-side post-equalization,” in ECOC 2015 (2015), paper Mo.3.4.4.

V. Houtsma and D. van Veen, “Demonstration of 25 Gb/s TDM-PON with 31.5 dB optical power budget using only 10 Gb/s optical components,” in ECOC 2015 (2015), paper PD.4.3.

J. Gao, “Demonstration of the first 29dB power budget of 25-Gb/s 4-PAM system without optical amplifier for next generation access network,” in OFC 2016 (2016), paper Th1I.2.

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Figures (8)

Fig. 1
Fig. 1 PON based future optical access network.
Fig. 2
Fig. 2 Real-time demonstration of QoS guaranteed 25-Gb/s PON prototype (a) experimental setup (b) Ethernet PON MAC/PHY board, (c) 10-Gb/s burst mode APD-ROSA and 25-Gb/s APD-ROSA.
Fig. 3
Fig. 3 25-Gb/s APD-ROSA with TO-46 package (a) configuration (b) frequency response and simulated 25-Gb/s eye-diagrams.
Fig. 4
Fig. 4 Performance of downstream and upstream in the 25-Gb/s PON prototype (a) PLR and BER of 25-Gb/s downstream (b) PLR of 10 Gb/s- burst-mode upstream when LSR is 14 dB.
Fig. 5
Fig. 5 Performance of upstream in the 25-Gb/s PON prototype (a) measurement setup for effect of LSR on PLR performance in burst-mode upstream signal (b) waveforms of optical input and electrical output: 10 dB of LSR case (i) and 22 dB of LSR case (ii) (c) the effect of LSR on PLR performance in burst-mode upstream signal.
Fig. 6
Fig. 6 Captured screenshot of downstream PLR and upstream PLR.
Fig. 7
Fig. 7 The measured throughput of QoS guaranteed ONU for scenario I for ONU1 (a) and ONU2 (b).
Fig. 8
Fig. 8 Real-time bandwidth re-allocation (a) service scenario II (b) measured throughput of ONUs.

Tables (1)

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Table 1 QoS Test Scenarios

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