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A dual purpose, all optical multiplexer circuit in InP, for multiplexing clock and NRZ data, and for transmultiplexing WDM to TDM |
Optics Express, Vol. 20, Issue 28, pp. 29577-29589 (2012)
http://dx.doi.org/10.1364/OE.20.029577
Acrobat PDF (5104 KB)
Abstract
We present a new, integrated all-optical multiplexer for wavelength grooming of many WDM channels into a single TDM channel. The chips were realized in a novel generic InP foundry process. For design and mask layout of the multiplexer circuits, we developed a simple equivalent circuit, representing the incorporated wavelength converter. With the chips realized, successful WDM to TDM transmultiplexing is demonstrated, as well as multiplexing of clock and NRZ data.
© 2012 OSA
1. Introduction
A. D. Ellis, D. Cotter, S. Ibrahim, R. Weerasuriya, C. W. Chow, J. Leuthold, W. Freude, S. Sygletos, P. Vorreau, R. Bonk, D. Hillerkuss, I. Tomkos, A. Tzanakaki, C. Kouloumentas, D. J. Richardson, P. Petropoulos, F. Parmigiani, G. Zarris, and D. Simeonidou, “Optical interconnection of core and metro networks [Invited],” J. Opt. Netw. 7(11), 928–935 (2008). [CrossRef]
P. Vorreau, S. Sygletos, F. Parmigiani, D. Hillerkuss, R. Bonk, P. Petropoulos, D. J. Richardson, G. Zarris, D. Simeonidou, D. Klonidis, I. Tomkos, R. Weerasuriya, S. Ibrahim, A. D. Ellis, D. Cotter, R. Morais, P. Monteiro, S. Ben Ezra, S. Tsadka, W. Freude, and J. Leuthold, “Optical grooming switch with regenerative functionality for transparent interconnection of networks,” Opt. Express 17(17), 15173–15185 (2009). [CrossRef] [PubMed]
X. Wu, A. Bogoni, S. R. Nuccio, O. F. Yilmaz, M. Scaffardi, and A. E. Willner, “High-speed optical WDM-to-TDM conversion using fiber nonlinearities,” IEEE J. Sel. Top. Quantum Electron. 16(5), 1441–1447 (2010). [CrossRef]
M. Hayashi, H. Tanaka, K. Ohara, T. Otani, and M. Suzuki, “OTDM transmitter using WDM-TDM conversion with an electroabsorption wavelength converter,” J. Lightwave Technol. 20(2), 236–242 (2002). [CrossRef]
J. L. Areal, H. Hu, E. Palushani, H. C. H. Mulvad, A. T. Clausen, M. Berger, L. K. Oxenlowe, and P. Jeppesen, “Synchronization and NRZ-to-RZ conversion of 10 GB/s Ethernet-like data packets and subsequent optical TDM multiplexing to 330 Gbit/s,” in Proceedings Optical Fiber Communication Conf. (OFC 2011), OThN5 (2011).
D. Hillerkuss, A. Ellis, G. Zarris, D. Simeonidou, J. Leuthold, and D. Cotter, “40 Gbit/s asynchronous digital optical regenerator,” Opt. Express 16(23), 18889–18894 (2008). [CrossRef] [PubMed]
C. Meuer, C. Schmidt-Langhorst, R. Bonk, H. Schmeckebier, D. Arsenijević, G. Fiol, A. Galperin, J. Leuthold, C. Schubert, and D. Bimberg, “80 Gb/s wavelength conversion using a quantum-dot semiconductor optical amplifier and optical filtering,” Opt. Express 19(6), 5134–5142 (2011). [CrossRef] [PubMed]
2. Design of ’all optical’ multiplexer circuits and manufacturing in generic InP technology
M. Smit, X. Leijtens, E. Bente, J. Van der Tol, H. Ambrosius, D. Robbins, M. Wale, N. Grote, and M. Schell, “Generic foundry model for InP-based photonics,” IET Optoelectronics 5(5), 187–194 (2011). [CrossRef]
- 1) concept, design, mask layout, and mounting, test, assessment (TU/e in Eindhoven/NL),
- 2) wafer, bar, die and chip fabrication in well established, standard building blocks and process modules (OCLARO in Caswell/UK).
- - The “passives” building blocks used were deeply etched waveguides (WG) for connections, ’shallow-deep’ transitions, 1x2 and 2x2 multi mode interference (MMI) couplers, and angled and straight optical input/outputs (I/O’s).
- - For the “actives” we used matched pairs of shallow ridge gain (GAIN) sections, and matched pairs of deeply etched ridges for the forwardly biased phase shifters (EOM).
3. Mounting, testing and chip characterization
4. The circuit on the chip
- • Transcription of the optical base (B) input data to a new carrier wavelength at the collector (C) output. This WLC conversion is based on XGM and XPM in the matched (identical) SOA pair, i.e. the pair with the largest rectangular contact pads in Fig. 5.
- • Separation of the input wavelength (B → drain D) and the output wavelength (emitter E → collector C), by using a parallel matched pair of gain sections in a phase tunable equal arm length MZ configuration as spatial (directional) filter. In series with the gain section, a phase shifter matched pair is included in this Mach Zehnder (MZ) to compensate for phase variations in the two arms, related to fabrication tolerances and/or temperature gradients in the chip under operation. An electrically induced phase shift of π can also be used to switch the MZ from cross to bar state and hence interchange e.g. inputs E and B. A big advantage of the included spatial (directional) filter is that it removes the need for an external wavelength selective filter at the device output, in order to remove the input data signal wave length. And hence it in principle also allows replacement of an external erbium doped fiber amplifier (EDFA) at the device output, by an integrated on chip (internal) in-line and/or booster SOA.
- • Optical equalization of the slow gain recovery and suppression of the carrier, with (cascaded) tunable unequal arm length MZ filters acting as differential interferometer (DI) filter and to some extent as FM→AM converter. Periodicity, and 360 degree tuning of the phase shift differences, gives proper (and electrically tunable) filter operation, with full C-band (~1550 nm) coverage.
- • The cascaded DI filters have delays of τ and 2τ respectively. Hence their output is a combination of four WLC output fields: E(t), E(t-τ), E(t-2τ) and E(t-3τ). As discussed and demonstrated below, their relative phases and amplitudes as determined by the settings of the phase shifters in the filters, determine the resulting filter output field, as function of time.
- • In both differential filters with delays τ and 2τ respectively, the actual DI filter is preceded with an equal arm MZ. The function of the latter MZ is to control the power ratio in the two arms of the following unequal arm DI-MZ. Either in order to apply deliberate differences, or for compensating for unequal losses in the two arms of the differential interferometer and/or for compensating imperfect 50/50 split ratios of the MMI’s. In chip testing, the power ratio control function can also be used for switching off for instance the first DI (with delay τ), in order to test the operation of the second DI (with delay 2τ).
5. Compact model for wavelength conversion, as input for DI filter designs
6. Experimental set up: subcomponent, integrated component and overall testing
7. Separation of in- and output wavelengths by spatial filtering
8. Equalization and carrier suppression with electrically tunable filters
9. The dual multiplex capability of the chip
10. Conclusions
Acknowledgments
References and links
A. D. Ellis, D. Cotter, S. Ibrahim, R. Weerasuriya, C. W. Chow, J. Leuthold, W. Freude, S. Sygletos, P. Vorreau, R. Bonk, D. Hillerkuss, I. Tomkos, A. Tzanakaki, C. Kouloumentas, D. J. Richardson, P. Petropoulos, F. Parmigiani, G. Zarris, and D. Simeonidou, “Optical interconnection of core and metro networks [Invited],” J. Opt. Netw. 7(11), 928–935 (2008). [CrossRef] | |
P. Vorreau, S. Sygletos, F. Parmigiani, D. Hillerkuss, R. Bonk, P. Petropoulos, D. J. Richardson, G. Zarris, D. Simeonidou, D. Klonidis, I. Tomkos, R. Weerasuriya, S. Ibrahim, A. D. Ellis, D. Cotter, R. Morais, P. Monteiro, S. Ben Ezra, S. Tsadka, W. Freude, and J. Leuthold, “Optical grooming switch with regenerative functionality for transparent interconnection of networks,” Opt. Express 17(17), 15173–15185 (2009). [CrossRef] [PubMed] | |
X. Wu, A. Bogoni, S. R. Nuccio, O. F. Yilmaz, M. Scaffardi, and A. E. Willner, “High-speed optical WDM-to-TDM conversion using fiber nonlinearities,” IEEE J. Sel. Top. Quantum Electron. 16(5), 1441–1447 (2010). [CrossRef] | |
M. Hayashi, H. Tanaka, K. Ohara, T. Otani, and M. Suzuki, “OTDM transmitter using WDM-TDM conversion with an electroabsorption wavelength converter,” J. Lightwave Technol. 20(2), 236–242 (2002). [CrossRef] | |
G. Zarris, P. Vorreau, D. Hillerkuss, S. K. Ibrahim, R. Weerasuriya, A. D. Ellis, J. Leuthold, and D. Simeonidou, “WDM-to-TDM traffic grooming by means of asynchronous retiming,” in Proceedings Optical Fiber Communication Conf. (OFC 2009), paper OThJ6 (2009). | |
J. L. Areal, H. Hu, E. Palushani, H. C. H. Mulvad, A. T. Clausen, M. Berger, L. K. Oxenlowe, and P. Jeppesen, “Synchronization and NRZ-to-RZ conversion of 10 GB/s Ethernet-like data packets and subsequent optical TDM multiplexing to 330 Gbit/s,” in Proceedings Optical Fiber Communication Conf. (OFC 2011), OThN5 (2011). | |
S. K. Ibrahim, D. Hillerkuss, R. Weerasuriya, G. Zarris, D. Simeonidou, J. Leuthold, and A. D. Ellis, “Novel 42.65 Gbit/s dual gate asynchronous digital optical regenerator using a single MZM,” in Proceedings ECOC 2008, Tu.4.D.3 (2008). | |
D. Hillerkuss, A. Ellis, G. Zarris, D. Simeonidou, J. Leuthold, and D. Cotter, “40 Gbit/s asynchronous digital optical regenerator,” Opt. Express 16(23), 18889–18894 (2008). [CrossRef] [PubMed] | |
C. Meuer, C. Schmidt-Langhorst, R. Bonk, H. Schmeckebier, D. Arsenijević, G. Fiol, A. Galperin, J. Leuthold, C. Schubert, and D. Bimberg, “80 Gb/s wavelength conversion using a quantum-dot semiconductor optical amplifier and optical filtering,” Opt. Express 19(6), 5134–5142 (2011). [CrossRef] [PubMed] | |
A. Marculescu, S. Sygletos, J. Li, D. Karki, D. Hillerkuss, S. Ben-Ezra, S. Tsadka, W. Freude, and J. Leuthold, “RZ to CSRZ format and wave length conversionwith regenerative properties,” in Proceedings Optical Fiber Communication Conf. (OFC 2009), OThS1 (2009). | |
M. Smit, X. Leijtens, E. Bente, J. Van der Tol, H. Ambrosius, D. Robbins, M. Wale, N. Grote, and M. Schell, “Generic foundry model for InP-based photonics,” IET Optoelectronics 5(5), 187–194 (2011). [CrossRef] |
OCIS Codes
(250.0250) Optoelectronics : Optoelectronics
(250.3140) Optoelectronics : Integrated optoelectronic circuits
(250.5980) Optoelectronics : Semiconductor optical amplifiers
ToC Category:
Waveguide and Optoelectronic Devices
History
Original Manuscript: October 12, 2012
Revised Manuscript: November 28, 2012
Manuscript Accepted: November 28, 2012
Published: December 20, 2012
Virtual Issues
European Conference on Optical Communication 2012 (2012) Optics Express
Citation
P. I. Kuindersma, X.J.M. Leijtens, J. H. C. van Zantvoort, and H. de Waardt, "A dual purpose, all optical multiplexer circuit in InP, for multiplexing clock and NRZ data, and for transmultiplexing WDM to TDM," Opt. Express 20, 29577-29589 (2012)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-20-28-29577
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References
- A. D. Ellis, D. Cotter, S. Ibrahim, R. Weerasuriya, C. W. Chow, J. Leuthold, W. Freude, S. Sygletos, P. Vorreau, R. Bonk, D. Hillerkuss, I. Tomkos, A. Tzanakaki, C. Kouloumentas, D. J. Richardson, P. Petropoulos, F. Parmigiani, G. Zarris, and D. Simeonidou, “Optical interconnection of core and metro networks [Invited],” J. Opt. Netw.7(11), 928–935 (2008). [CrossRef]
- P. Vorreau, S. Sygletos, F. Parmigiani, D. Hillerkuss, R. Bonk, P. Petropoulos, D. J. Richardson, G. Zarris, D. Simeonidou, D. Klonidis, I. Tomkos, R. Weerasuriya, S. Ibrahim, A. D. Ellis, D. Cotter, R. Morais, P. Monteiro, S. Ben Ezra, S. Tsadka, W. Freude, and J. Leuthold, “Optical grooming switch with regenerative functionality for transparent interconnection of networks,” Opt. Express17(17), 15173–15185 (2009). [CrossRef] [PubMed]
- X. Wu, A. Bogoni, S. R. Nuccio, O. F. Yilmaz, M. Scaffardi, and A. E. Willner, “High-speed optical WDM-to-TDM conversion using fiber nonlinearities,” IEEE J. Sel. Top. Quantum Electron.16(5), 1441–1447 (2010). [CrossRef]
- M. Hayashi, H. Tanaka, K. Ohara, T. Otani, and M. Suzuki, “OTDM transmitter using WDM-TDM conversion with an electroabsorption wavelength converter,” J. Lightwave Technol.20(2), 236–242 (2002). [CrossRef]
- G. Zarris, P. Vorreau, D. Hillerkuss, S. K. Ibrahim, R. Weerasuriya, A. D. Ellis, J. Leuthold, and D. Simeonidou, “WDM-to-TDM traffic grooming by means of asynchronous retiming,” in Proceedings Optical Fiber Communication Conf. (OFC 2009), paper OThJ6 (2009).
- J. L. Areal, H. Hu, E. Palushani, H. C. H. Mulvad, A. T. Clausen, M. Berger, L. K. Oxenlowe, and P. Jeppesen, “Synchronization and NRZ-to-RZ conversion of 10 GB/s Ethernet-like data packets and subsequent optical TDM multiplexing to 330 Gbit/s,” in Proceedings Optical Fiber Communication Conf. (OFC 2011), OThN5 (2011).
- S. K. Ibrahim, D. Hillerkuss, R. Weerasuriya, G. Zarris, D. Simeonidou, J. Leuthold, and A. D. Ellis, “Novel 42.65 Gbit/s dual gate asynchronous digital optical regenerator using a single MZM,” in Proceedings ECOC 2008, Tu.4.D.3 (2008).
- D. Hillerkuss, A. Ellis, G. Zarris, D. Simeonidou, J. Leuthold, and D. Cotter, “40 Gbit/s asynchronous digital optical regenerator,” Opt. Express16(23), 18889–18894 (2008). [CrossRef] [PubMed]
- C. Meuer, C. Schmidt-Langhorst, R. Bonk, H. Schmeckebier, D. Arsenijević, G. Fiol, A. Galperin, J. Leuthold, C. Schubert, and D. Bimberg, “80 Gb/s wavelength conversion using a quantum-dot semiconductor optical amplifier and optical filtering,” Opt. Express19(6), 5134–5142 (2011). [CrossRef] [PubMed]
- A. Marculescu, S. Sygletos, J. Li, D. Karki, D. Hillerkuss, S. Ben-Ezra, S. Tsadka, W. Freude, and J. Leuthold, “RZ to CSRZ format and wave length conversionwith regenerative properties,” in Proceedings Optical Fiber Communication Conf. (OFC 2009), OThS1 (2009).
- M. Smit, X. Leijtens, E. Bente, J. Van der Tol, H. Ambrosius, D. Robbins, M. Wale, N. Grote, and M. Schell, “Generic foundry model for InP-based photonics,” IET Optoelectronics5(5), 187–194 (2011). [CrossRef]
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