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Multichannel wavelength conversion of 50-Gbit/s NRZ-DQPSK signals using a quantum-dot semiconductor optical amplifier |
Optics Express, Vol. 19, Issue 26, pp. B560-B566 (2011)
http://dx.doi.org/10.1364/OE.19.00B560
Acrobat PDF (1140 KB)
Abstract
We demonstrate simultaneous four-channel wavelength conversion of 50-Gbit/s non-return-to-zero differential quadrature-shift-keying signals with a channel spacing of 100-GHz using a quantum-dot semiconductor optical amplifier. Error-free operations with low-power penalties are successfully achieved with various channel configurations.
© 2011 OSA
1. Introduction
K. Inoue, T. Hasegawa, K. Oda, and H. Toba, “Multichannel frequency conversion experiment using fibre four-wave mixing,” Electron. Lett. 29(19), 1708–1710 (1993). [CrossRef]
M. N. Bhuiyan, M. Matsuura, H. N. Tan, and N. Kishi, “Simultaneous multichannel wavelength conversion of polarization shift keying signal with different channel group-delay and state of polarization,” Opt. Commun. 284(2), 665–669 (2011). [CrossRef]
J. P. R. Lacey, S. J. Madden, M. A. Summerfield, R. S. Tucker, and A. I. Faris, “Four-channel WDM optical phase conjugator using four-wave mixing in a single semiconductor optical amplifier,” Electron. Lett. 31(9), 743–744 (1995). [CrossRef]
C. M. Gallep, H. J. S. Dorren, and O. Raz, “Four-wave-mixing-based dual-wavelength conversion in a semiconductor optical amplifier,” IEEE Photon. Technol. Lett. 22(21), 1550–1552 (2010). [CrossRef]
H. Hu, R. Nouroozi, R. Ludwig, B. Hüttl, C. Schmidt-Langhorst, H. Suche, W. Sohler, and C. Schubert, “Simultaneous polarization-insensitive wavelength conversion of 80-Gb/s RZ-DQPSK signal and 40-Gb/s RZ-OOK signal in a Ti:PPLN waveguide,” J. Lightwave Technol. 29(8), 1092–1097 (2011). [CrossRef]
J. Yamawaku, H. Takara, T. Ohara, K. Sato, A. Takada, T. Morioka, O. Tadanaga, H. Miyazawa, and M. Asobe, “Simultaneous 25-GHz-spaced DWDM wavelength conversion of 1.03 Tbit/s (103 × 10 Gbit/s) signals in PPLN waveguide,” Electron. Lett. 39(15), 1144–1145 (2003). [CrossRef]
C. Okonkwo, R. C. Almeida, R. E. Martin, and K. M. Guild, “Performance analysis of an optical packet switch with shared parametric wavelength converters,” IEEE Commun. Lett. 12(8), 596–598 (2008). [CrossRef]
N. Kitsuwan, H. N. Tan, M. Matsuura, N. Kishi, and E. Oki, “Recursive parametric wavelength conversion scheme for optical packet switch,” J. Lightwave Technol. 29(11), 1659–1670 (2011). [CrossRef]
J. P. R. Lacey, S. J. Madden, M. A. Summerfield, R. S. Tucker, and A. I. Faris, “Four-channel WDM optical phase conjugator using four-wave mixing in a single semiconductor optical amplifier,” Electron. Lett. 31(9), 743–744 (1995). [CrossRef]
P. J. Winzer and R.-J. Essiambre, “Advanced modulation formats for high-capacity optical transport networks,” J. Lightwave Technol. 24(12), 4711–4728 (2006). [CrossRef]
T. Akiyama, M. Sugawara, and Y. Arakawa, “Quantum-dot semiconductor optical amplifiers,” Proc. IEEE 95(9), 1757–1766 (2007). [CrossRef]
M. Matsuura, O. Raz, F. Gomez-Agis, N. Calabretta, and H. J. S. Dorren, “320-Gb/s wavelength conversion based on cross-gain modulation in a quantum-dot SOA,” presented at the 37th European Conference and Exhibition on Optical Communication (ECOC 2011), Geneva, Switzerland, Mo.1.A.1, 18–22 Sept. 2011.
O. Raz, J. Herrera, N. Calabretta, E. Tangdiongga, S. Anantahanasarn, R. Nötzel, and H. J. S. Dorren, “Non-inverted multiple wavelength converter at 40 Gbit/s using 1550 nm quantum dot SOA,” Electron. Lett. 44(16), 988–989 (2008). [CrossRef]
G. Contestabile, A. Maruta, S. Sekiguchi, K. Morito, M. Sugawara, and K. Kitayama, “All-optical wavelength multicasting in a QD-SOA,” IEEE J. Quantum Electron. 47(4), 541–547 (2011). [CrossRef]
C. Meuer, C. Schmidt-Langhorst, H. Schmeckebier, G. Fiol, D. Arsenijević, C. Schubert, and D. Bimberg, “40 Gb/s wavelength conversion via four-wave mixing in a quantum-dot semiconductor optical amplifier,” Opt. Express 19(4), 3788–3798 (2011), http://www.opticsinfobase.org/abstract.cfm?URI=oe-19-6-5134. [CrossRef] [PubMed]
M. Matsuura, O. Raz, F. Gomez-Agis, N. Calabretta, and H. J. S. Dorren, “320 Gbit/s wavelength conversion using four-wave mixing in quantum-dot semiconductor optical amplifiers,” Opt. Lett. 36(15), 2910–2912 (2011). [CrossRef] [PubMed]
M. Matsuura, N. Calabretta, O. Raz, and H. J. S. Dorren, “Simultaneous multichannel wavelength conversion of 50-Gb/s NRZ-DQPSK signals with 100-GHz channel spacing using a quantum-dot SOA,” presented at the 37th European Conference and Exhibition on Optical Communication (ECOC 2011), Geneva, Switzerland, We.10.P1.51, 18–22 Sept. 2011.
2. Experimental setup
3. Experiments
3.1. FWM characteristics of QD-SOA
M. Matsuura and N. Kishi, “High-speed wavelength conversion using FWM in a quantum-dot SOA,” IEEE Photon. Technol. Lett. 23(10), 615–617 (2011). [CrossRef]
3.2. Evaluation of channel-switching ratio
3.3. Multichannel wavelength conversion using 50-Gbit/s NRZ-DQPSK signals
4. Summary
Acknowledgment
References and links
K. Inoue, T. Hasegawa, K. Oda, and H. Toba, “Multichannel frequency conversion experiment using fibre four-wave mixing,” Electron. Lett. 29(19), 1708–1710 (1993). [CrossRef] | |
S. Watanabe, S. Takeda, and T. Chikama, “Interband wavelength conversion of 320 Gb/s (32×10 Gb/s) WDM signal using a polarization insensitive fiber four-wave mixer,” in European Conference and Exhibition on Optical Communications (ECOC 1998), Madrid, Spain, 85–87, 20–24 Sept. 1998. | |
J. Yu and M.-F. Huang, “Wavelength conversion based on copolarized pumps generated by optical carrier suppression,” IEEE Photon. Technol. Lett. 21(6), 392–394 (2009). [CrossRef] | |
M. N. Bhuiyan, M. Matsuura, H. N. Tan, and N. Kishi, “Simultaneous multichannel wavelength conversion of polarization shift keying signal with different channel group-delay and state of polarization,” Opt. Commun. 284(2), 665–669 (2011). [CrossRef] | |
J. P. R. Lacey, S. J. Madden, M. A. Summerfield, R. S. Tucker, and A. I. Faris, “Four-channel WDM optical phase conjugator using four-wave mixing in a single semiconductor optical amplifier,” Electron. Lett. 31(9), 743–744 (1995). [CrossRef] | |
J. P. R. Lacey, S. J. Madden, and M. A. Summerfield, “Four-channel polarization-insensitive optically transparent wavelength converter,” IEEE Photon. Technol. Lett. 9(10), 1355–1357 (1997). [CrossRef] | |
C. M. Gallep, H. J. S. Dorren, and O. Raz, “Four-wave-mixing-based dual-wavelength conversion in a semiconductor optical amplifier,” IEEE Photon. Technol. Lett. 22(21), 1550–1552 (2010). [CrossRef] | |
L. Xu, N. Ophir, M. Menard, R. Kin, W. Lau, A. C. Turner-Foster, M. A. Foster, M. Lipson, A. L. Gaeta, and K. Bergman, “Simultaneous wavelength conversion of ASK and DPSK signals based on four-wave mixing in dispersion engineered silicon waveguides,” Opt. Express 19(13), 12172–12179 (2011). | |
H. Hu, R. Nouroozi, R. Ludwig, B. Hüttl, C. Schmidt-Langhorst, H. Suche, W. Sohler, and C. Schubert, “Simultaneous polarization-insensitive wavelength conversion of 80-Gb/s RZ-DQPSK signal and 40-Gb/s RZ-OOK signal in a Ti:PPLN waveguide,” J. Lightwave Technol. 29(8), 1092–1097 (2011). [CrossRef] | |
J. Yamawaku, H. Takara, T. Ohara, K. Sato, A. Takada, T. Morioka, O. Tadanaga, H. Miyazawa, and M. Asobe, “Simultaneous 25-GHz-spaced DWDM wavelength conversion of 1.03 Tbit/s (103 × 10 Gbit/s) signals in PPLN waveguide,” Electron. Lett. 39(15), 1144–1145 (2003). [CrossRef] | |
C. Okonkwo, R. C. Almeida, R. E. Martin, and K. M. Guild, “Performance analysis of an optical packet switch with shared parametric wavelength converters,” IEEE Commun. Lett. 12(8), 596–598 (2008). [CrossRef] | |
N. Kitsuwan, R. Rojas-Cessa, M. Matsuura, and E. Oki, “Performances of optical packet switches based on parametric wavelength converters,” J. Opt. Commun. 2(8), 558–569 (2010). [CrossRef] | |
N. Kitsuwan, H. N. Tan, M. Matsuura, N. Kishi, and E. Oki, “Recursive parametric wavelength conversion scheme for optical packet switch,” J. Lightwave Technol. 29(11), 1659–1670 (2011). [CrossRef] | |
P. J. Winzer and R.-J. Essiambre, “Advanced modulation formats for high-capacity optical transport networks,” J. Lightwave Technol. 24(12), 4711–4728 (2006). [CrossRef] | |
T. Akiyama, M. Sugawara, and Y. Arakawa, “Quantum-dot semiconductor optical amplifiers,” Proc. IEEE 95(9), 1757–1766 (2007). [CrossRef] | |
M. Matsuura, O. Raz, F. Gomez-Agis, N. Calabretta, and H. J. S. Dorren, “320-Gb/s wavelength conversion based on cross-gain modulation in a quantum-dot SOA,” presented at the 37th European Conference and Exhibition on Optical Communication (ECOC 2011), Geneva, Switzerland, Mo.1.A.1, 18–22 Sept. 2011. | |
O. Raz, J. Herrera, N. Calabretta, E. Tangdiongga, S. Anantahanasarn, R. Nötzel, and H. J. S. Dorren, “Non-inverted multiple wavelength converter at 40 Gbit/s using 1550 nm quantum dot SOA,” Electron. Lett. 44(16), 988–989 (2008). [CrossRef] | |
G. Contestabile, A. Maruta, S. Sekiguchi, K. Morito, M. Sugawara, and K. Kitayama, “All-optical wavelength multicasting in a QD-SOA,” IEEE J. Quantum Electron. 47(4), 541–547 (2011). [CrossRef] | |
C. Meuer, C. Schmidt-Langhorst, H. Schmeckebier, G. Fiol, D. Arsenijević, C. Schubert, and D. Bimberg, “40 Gb/s wavelength conversion via four-wave mixing in a quantum-dot semiconductor optical amplifier,” Opt. Express 19(4), 3788–3798 (2011), http://www.opticsinfobase.org/abstract.cfm?URI=oe-19-6-5134. [CrossRef] [PubMed] | |
M. Matsuura and N. Kishi, “High-speed wavelength conversion using FWM in a quantum-dot SOA,” IEEE Photon. Technol. Lett. 23(10), 615–617 (2011). [CrossRef] | |
M. Matsuura, O. Raz, F. Gomez-Agis, N. Calabretta, and H. J. S. Dorren, “320 Gbit/s wavelength conversion using four-wave mixing in quantum-dot semiconductor optical amplifiers,” Opt. Lett. 36(15), 2910–2912 (2011). [CrossRef] [PubMed] | |
M. Matsuura, N. Calabretta, O. Raz, and H. J. S. Dorren, “Simultaneous multichannel wavelength conversion of 50-Gb/s NRZ-DQPSK signals with 100-GHz channel spacing using a quantum-dot SOA,” presented at the 37th European Conference and Exhibition on Optical Communication (ECOC 2011), Geneva, Switzerland, We.10.P1.51, 18–22 Sept. 2011. |
OCIS Codes
(060.2330) Fiber optics and optical communications : Fiber optics communications
(060.2360) Fiber optics and optical communications : Fiber optics links and subsystems
(230.5590) Optical devices : Quantum-well, -wire and -dot devices
(250.5980) Optoelectronics : Semiconductor optical amplifiers
ToC Category:
Subsystems for Optical Networks
History
Original Manuscript: October 5, 2011
Revised Manuscript: November 20, 2011
Manuscript Accepted: November 21, 2011
Published: November 30, 2011
Virtual Issues
European Conference on Optical Communication 2011 (2011) Optics Express
Citation
Motoharu Matsuura, Nicola Calabretta, Oded Raz, and Harm J. S. Dorren, "Multichannel wavelength conversion of 50-Gbit/s NRZ-DQPSK signals using a quantum-dot semiconductor optical amplifier," Opt. Express 19, B560-B566 (2011)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-19-26-B560
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References
- K. Inoue, T. Hasegawa, K. Oda, and H. Toba, “Multichannel frequency conversion experiment using fibre four-wave mixing,” Electron. Lett.29(19), 1708–1710 (1993). [CrossRef]
- S. Watanabe, S. Takeda, and T. Chikama, “Interband wavelength conversion of 320 Gb/s (32×10 Gb/s) WDM signal using a polarization insensitive fiber four-wave mixer,” in European Conference and Exhibition on Optical Communications (ECOC 1998), Madrid, Spain, 85–87, 20–24 Sept. 1998.
- J. Yu and M.-F. Huang, “Wavelength conversion based on copolarized pumps generated by optical carrier suppression,” IEEE Photon. Technol. Lett.21(6), 392–394 (2009). [CrossRef]
- M. N. Bhuiyan, M. Matsuura, H. N. Tan, and N. Kishi, “Simultaneous multichannel wavelength conversion of polarization shift keying signal with different channel group-delay and state of polarization,” Opt. Commun.284(2), 665–669 (2011). [CrossRef]
- J. P. R. Lacey, S. J. Madden, M. A. Summerfield, R. S. Tucker, and A. I. Faris, “Four-channel WDM optical phase conjugator using four-wave mixing in a single semiconductor optical amplifier,” Electron. Lett.31(9), 743–744 (1995). [CrossRef]
- J. P. R. Lacey, S. J. Madden, and M. A. Summerfield, “Four-channel polarization-insensitive optically transparent wavelength converter,” IEEE Photon. Technol. Lett.9(10), 1355–1357 (1997). [CrossRef]
- C. M. Gallep, H. J. S. Dorren, and O. Raz, “Four-wave-mixing-based dual-wavelength conversion in a semiconductor optical amplifier,” IEEE Photon. Technol. Lett.22(21), 1550–1552 (2010). [CrossRef]
- L. Xu, N. Ophir, M. Menard, R. Kin, W. Lau, A. C. Turner-Foster, M. A. Foster, M. Lipson, A. L. Gaeta, and K. Bergman, “Simultaneous wavelength conversion of ASK and DPSK signals based on four-wave mixing in dispersion engineered silicon waveguides,” Opt. Express19(13), 12172–12179 (2011).
- H. Hu, R. Nouroozi, R. Ludwig, B. Hüttl, C. Schmidt-Langhorst, H. Suche, W. Sohler, and C. Schubert, “Simultaneous polarization-insensitive wavelength conversion of 80-Gb/s RZ-DQPSK signal and 40-Gb/s RZ-OOK signal in a Ti:PPLN waveguide,” J. Lightwave Technol.29(8), 1092–1097 (2011). [CrossRef]
- J. Yamawaku, H. Takara, T. Ohara, K. Sato, A. Takada, T. Morioka, O. Tadanaga, H. Miyazawa, and M. Asobe, “Simultaneous 25-GHz-spaced DWDM wavelength conversion of 1.03 Tbit/s (103 × 10 Gbit/s) signals in PPLN waveguide,” Electron. Lett.39(15), 1144–1145 (2003). [CrossRef]
- C. Okonkwo, R. C. Almeida, R. E. Martin, and K. M. Guild, “Performance analysis of an optical packet switch with shared parametric wavelength converters,” IEEE Commun. Lett.12(8), 596–598 (2008). [CrossRef]
- N. Kitsuwan, R. Rojas-Cessa, M. Matsuura, and E. Oki, “Performances of optical packet switches based on parametric wavelength converters,” J. Opt. Commun.2(8), 558–569 (2010). [CrossRef]
- N. Kitsuwan, H. N. Tan, M. Matsuura, N. Kishi, and E. Oki, “Recursive parametric wavelength conversion scheme for optical packet switch,” J. Lightwave Technol.29(11), 1659–1670 (2011). [CrossRef]
- P. J. Winzer and R.-J. Essiambre, “Advanced modulation formats for high-capacity optical transport networks,” J. Lightwave Technol.24(12), 4711–4728 (2006). [CrossRef]
- T. Akiyama, M. Sugawara, and Y. Arakawa, “Quantum-dot semiconductor optical amplifiers,” Proc. IEEE95(9), 1757–1766 (2007). [CrossRef]
- M. Matsuura, O. Raz, F. Gomez-Agis, N. Calabretta, and H. J. S. Dorren, “320-Gb/s wavelength conversion based on cross-gain modulation in a quantum-dot SOA,” presented at the 37th European Conference and Exhibition on Optical Communication (ECOC 2011), Geneva, Switzerland, Mo.1.A.1, 18–22 Sept. 2011.
- O. Raz, J. Herrera, N. Calabretta, E. Tangdiongga, S. Anantahanasarn, R. Nötzel, and H. J. S. Dorren, “Non-inverted multiple wavelength converter at 40 Gbit/s using 1550 nm quantum dot SOA,” Electron. Lett.44(16), 988–989 (2008). [CrossRef]
- G. Contestabile, A. Maruta, S. Sekiguchi, K. Morito, M. Sugawara, and K. Kitayama, “All-optical wavelength multicasting in a QD-SOA,” IEEE J. Quantum Electron.47(4), 541–547 (2011). [CrossRef]
- C. Meuer, C. Schmidt-Langhorst, H. Schmeckebier, G. Fiol, D. Arsenijević, C. Schubert, and D. Bimberg, “40 Gb/s wavelength conversion via four-wave mixing in a quantum-dot semiconductor optical amplifier,” Opt. Express19(4), 3788–3798 (2011), http://www.opticsinfobase.org/abstract.cfm?URI=oe-19-6-5134 . [CrossRef] [PubMed]
- M. Matsuura and N. Kishi, “High-speed wavelength conversion using FWM in a quantum-dot SOA,” IEEE Photon. Technol. Lett.23(10), 615–617 (2011). [CrossRef]
- M. Matsuura, O. Raz, F. Gomez-Agis, N. Calabretta, and H. J. S. Dorren, “320 Gbit/s wavelength conversion using four-wave mixing in quantum-dot semiconductor optical amplifiers,” Opt. Lett.36(15), 2910–2912 (2011). [CrossRef] [PubMed]
- M. Matsuura, N. Calabretta, O. Raz, and H. J. S. Dorren, “Simultaneous multichannel wavelength conversion of 50-Gb/s NRZ-DQPSK signals with 100-GHz channel spacing using a quantum-dot SOA,” presented at the 37th European Conference and Exhibition on Optical Communication (ECOC 2011), Geneva, Switzerland, We.10.P1.51, 18–22 Sept. 2011.
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