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Gigabit NRZ, CAP and optical OFDM systems over POF links using LEDs |
Optics Express, Vol. 20, Issue 20, pp. 22284-22289 (2012)
http://dx.doi.org/10.1364/OE.20.022284
Acrobat PDF (1084 KB)
Abstract
Simulations have been performed to compare the system capacity and power dissipation of NRZ, CAP-64 and 64-QAM-OFDM systems over FEC enhanced POF links using LEDs, for both unidirectional and bidirectional transmission. It is shown that CAP-64 outperforms NRZ and 64-QAM-OFDM in terms of system capacity and supports a record high 3.5Gb/s bidirectional and 2.1Gb/s unidirectional transmissions over 50m POF. The CAP-64 transceiver consumes similar power compared with NRZ whilst the 64-QAM-OFDM transceiver consumes about twice as much.
© 2012 OSA
1. Introduction
2. System architectures
2.1 CAP-64 transceivers
- − Bidirectional transmission. In this case, a transmitter and a receiver co-exist at each end of the link. One way to implement the bidirectional system might be using the MUX module shown in the right inset in Fig. 1(a), which consists of a LED and a PD that is integrated in the module. The MUX module functions as a bidirectional multiplexer, where the LED is driven by the transmitter electrical signal and its output beam is launched into the POF through a mirror hole which has a similar size as the LED facet; while the received light is reflected by the mirror to the PD facet which has a size similar to that of POF (1mm radius). The detected signal is processed in the receiver in the same side. Therefore, the system can work in a half/full duplex manner. Obviously, the MUX module introduces loss due to partial reflection of the received optical beam.
- − Unidirectional transmission. In this case, only a transmitter or a receiver is located in each side and the MUX module is simplified into a sole LED (a sole PD) in the transmitter (receiver) side. As a result, MUX module loss in the bidirectional transmission mode does not exist in the unidirectional case.
2.2 64-QAM-OFDM transceivers
J. L. Wei, C. Sánchez, R. P. Giddings, E. Hugues-Salas, and J. M. Tang, “Significant improvements in optical power budgets of real-time optical OFDM PON systems,” Opt. Express 18(20), 20732–20745 (2010). [CrossRef] [PubMed]
J. L. Wei, C. Sánchez, R. P. Giddings, E. Hugues-Salas, and J. M. Tang, “Significant improvements in optical power budgets of real-time optical OFDM PON systems,” Opt. Express 18(20), 20732–20745 (2010). [CrossRef] [PubMed]
J. L. Wei, C. Sánchez, R. P. Giddings, E. Hugues-Salas, and J. M. Tang, “Significant improvements in optical power budgets of real-time optical OFDM PON systems,” Opt. Express 18(20), 20732–20745 (2010). [CrossRef] [PubMed]
2.2.1 Restriction on power loading for 64-QAM-OFDM system
J. L. Wei, C. Sánchez, R. P. Giddings, E. Hugues-Salas, and J. M. Tang, “Significant improvements in optical power budgets of real-time optical OFDM PON systems,” Opt. Express 18(20), 20732–20745 (2010). [CrossRef] [PubMed]
J. L. Wei, C. Sánchez, R. P. Giddings, E. Hugues-Salas, and J. M. Tang, “Significant improvements in optical power budgets of real-time optical OFDM PON systems,” Opt. Express 18(20), 20732–20745 (2010). [CrossRef] [PubMed]
X. Q. Jin, J. L. Wei, R. P. Giddings, S. Walker, and J. M. Tang, “Experimental demonstrations and extensive comparisons of end-to-end real-time optical OFDM transceivers with adaptive bit and/or power loading,” IEEE Photonics J. 3(3), 500–511 (2011). [CrossRef]
2.3 Simulation parameters
3. Results for transmission capacity
4. System power dissipation estimates and comparisons
J. Lee, M.-S. Chen, and H.-D. Wang, “Design and comparison of three 20Gb/s backplane transceivers for Duobinary, PAM4, and NRZ data,” IEEE J. Solid-state Circuits 43(9), 2120–2133 (2008). [CrossRef]
P. A. Milder, R. Bouziane, R. Koutsoyannis, C. R. Berger, Y. Benlachtar, R. I. Killey, M. Glick, and J. C. Hoe, “Design and simulation of 25 Gb/s optical OFDM transceiver ASICs,” Opt. Express 19(26), B337–B342 (2011). [CrossRef] [PubMed]
5. Conclusions
References and links
B. Charbonnier, P. Urvoas, M. Ouzzif, J. L. Masson, J. D. Lambkin, Mo. O’Gorman, and R. Gaudino, “EU project POF-PLUS: Gigabit transmission over 50m of step-index plastic optical fibre for home networking,” OFC/NFOEC09, Paper OWR4. | |
C. Zerna, J. Sundermeyer, A. Fiederer, N. Verwaal, B. Offenbeck, and N. Weber, “Integrated PAM2 decision feedback equalizer for Gigabit Ethernet over standard SI-POF using red LED,” ECOC 2010, Paper We.6.B.4. | |
F. Breyer, S. C. J. Lee, S. Randel, and N. Hanik, “PAM-4 Signalling for Gigabit transmission over standard step-index plastic optical fibre using light emitting diodes,” ECOC08, Paper We.2.A.3. | |
S. C. J. Lee, F. Breyer, D. Cárdenas, S. Randel, and T. Koonen, “Real-time implementation of a 1.25Gb/s DMT transmitter for robust and low-cost LED-based plastic optical fiber applications,” ECOC2009, Paper 3.5.4. | |
L. Geng, R. V. Penty, I. H. White, and D. G. Cunningham, “FEC-free 50 m 1.5 Gb/s plastic optical fibre link using CAP modulation for home networks,” ECOC 2012, Paper Th.1.B.4. | |
J. L. Wei, J. D. Ingham, D. G. Cunningham, R. V. Penty, and I. H. White, “Comparisons between 28 Gb/s NRZ, PAM, CAP and optical OFDM systems for Datacommunication Applications,” IEEE OI 2012, Paper MA2. | |
J. J. Werner, Tutorial on carrierless AM/PM (ANSI X3T9.5 TP/PMD Working Group, 1992 & 1993). | |
J. L. Wei, C. Sánchez, R. P. Giddings, E. Hugues-Salas, and J. M. Tang, “Significant improvements in optical power budgets of real-time optical OFDM PON systems,” Opt. Express 18(20), 20732–20745 (2010). [CrossRef] [PubMed] | |
W. Shieh and I. Djordjevic, Orthogonal Frequency Division Multiplexing for Optical Communications (Elsevier, 2010). | |
X. Q. Jin, J. L. Wei, R. P. Giddings, S. Walker, and J. M. Tang, “Experimental demonstrations and extensive comparisons of end-to-end real-time optical OFDM transceivers with adaptive bit and/or power loading,” IEEE Photonics J. 3(3), 500–511 (2011). [CrossRef] | |
L. Biard and D. Noguet, “Reed-Solomon codes for low power communications,” J. Commun. 3, 13–21 (2008). | |
J. Lee, M.-S. Chen, and H.-D. Wang, “Design and comparison of three 20Gb/s backplane transceivers for Duobinary, PAM4, and NRZ data,” IEEE J. Solid-state Circuits 43(9), 2120–2133 (2008). [CrossRef] | |
P. A. Milder, R. Bouziane, R. Koutsoyannis, C. R. Berger, Y. Benlachtar, R. I. Killey, M. Glick, and J. C. Hoe, “Design and simulation of 25 Gb/s optical OFDM transceiver ASICs,” Opt. Express 19(26), B337–B342 (2011). [CrossRef] [PubMed] | |
E. Alpman, H. Lakdawala, L. R. Carley, and K. Soumyanath, “A 1.1V 50mW 2.5GS/s 7b time-interleaved C-2C SAR ADC in 45nm LP digital CMOS,” ISSCC09, 76–78, (2009). |
OCIS Codes
(060.0060) Fiber optics and optical communications : Fiber optics and optical communications
(060.4080) Fiber optics and optical communications : Modulation
ToC Category:
Fiber Optics and Optical Communications
History
Original Manuscript: August 16, 2012
Revised Manuscript: September 6, 2012
Manuscript Accepted: September 6, 2012
Published: September 14, 2012
Citation
J. L. Wei, L. Geng, D.G. Cunningham, R.V. Penty, and I. H. White, "Gigabit NRZ, CAP and optical OFDM systems over POF links using LEDs," Opt. Express 20, 22284-22289 (2012)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-20-20-22284
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References
- B. Charbonnier, P. Urvoas, M. Ouzzif, J. L. Masson, J. D. Lambkin, Mo. O’Gorman, and R. Gaudino, “EU project POF-PLUS: Gigabit transmission over 50m of step-index plastic optical fibre for home networking,” OFC/NFOEC09, Paper OWR4.
- C. Zerna, J. Sundermeyer, A. Fiederer, N. Verwaal, B. Offenbeck, and N. Weber, “Integrated PAM2 decision feedback equalizer for Gigabit Ethernet over standard SI-POF using red LED,” ECOC 2010, Paper We.6.B.4.
- F. Breyer, S. C. J. Lee, S. Randel, and N. Hanik, “PAM-4 Signalling for Gigabit transmission over standard step-index plastic optical fibre using light emitting diodes,” ECOC08, Paper We.2.A.3.
- S. C. J. Lee, F. Breyer, D. Cárdenas, S. Randel, and T. Koonen, “Real-time implementation of a 1.25Gb/s DMT transmitter for robust and low-cost LED-based plastic optical fiber applications,” ECOC2009, Paper 3.5.4.
- L. Geng, R. V. Penty, I. H. White, and D. G. Cunningham, “FEC-free 50 m 1.5 Gb/s plastic optical fibre link using CAP modulation for home networks,” ECOC 2012, Paper Th.1.B.4.
- J. L. Wei, J. D. Ingham, D. G. Cunningham, R. V. Penty, and I. H. White, “Comparisons between 28 Gb/s NRZ, PAM, CAP and optical OFDM systems for Datacommunication Applications,” IEEE OI 2012, Paper MA2.
- J. J. Werner, Tutorial on carrierless AM/PM (ANSI X3T9.5 TP/PMD Working Group, 1992 & 1993).
- J. L. Wei, C. Sánchez, R. P. Giddings, E. Hugues-Salas, and J. M. Tang, “Significant improvements in optical power budgets of real-time optical OFDM PON systems,” Opt. Express18(20), 20732–20745 (2010). [CrossRef] [PubMed]
- W. Shieh and I. Djordjevic, Orthogonal Frequency Division Multiplexing for Optical Communications (Elsevier, 2010).
- X. Q. Jin, J. L. Wei, R. P. Giddings, S. Walker, and J. M. Tang, “Experimental demonstrations and extensive comparisons of end-to-end real-time optical OFDM transceivers with adaptive bit and/or power loading,” IEEE Photonics J.3(3), 500–511 (2011). [CrossRef]
- L. Biard and D. Noguet, “Reed-Solomon codes for low power communications,” J. Commun.3, 13–21 (2008).
- J. Lee, M.-S. Chen, and H.-D. Wang, “Design and comparison of three 20Gb/s backplane transceivers for Duobinary, PAM4, and NRZ data,” IEEE J. Solid-state Circuits43(9), 2120–2133 (2008). [CrossRef]
- P. A. Milder, R. Bouziane, R. Koutsoyannis, C. R. Berger, Y. Benlachtar, R. I. Killey, M. Glick, and J. C. Hoe, “Design and simulation of 25 Gb/s optical OFDM transceiver ASICs,” Opt. Express19(26), B337–B342 (2011). [CrossRef] [PubMed]
- E. Alpman, H. Lakdawala, L. R. Carley, and K. Soumyanath, “A 1.1V 50mW 2.5GS/s 7b time-interleaved C-2C SAR ADC in 45nm LP digital CMOS,” ISSCC09, 76–78, (2009).
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