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Ray-tracing analysis of crosstalk in multi-core polymer optical fibers |
Optics Express, Vol. 18, Issue 21, pp. 22446-22461 (2010)
http://dx.doi.org/10.1364/OE.18.022446
Acrobat PDF (2257 KB)
Abstract
The aim of this paper is to present a new ray-tracing model which describes the propagation of light in multi-core polymer optical fibers (MCPOFs), taking into account the crosstalk among their cores. The new model overcomes many of the limitations of previous approaches allowing us to simulate MCPOFs of arbitrary designs. Additionally, it provides us with the output ray distribution at the end of the fiber, making it possible to calculate useful parameters related to the fiber performance such as the Near-Field Pattern, the Far-Field Pattern or the bandwidth. We also present experimental measurements in order to validate the computational model and we analyze the importance of crosstalk in different MCPOF configurations.
© 2010 OSA
1. Introduction
H. Poisel, and O. Ziemann, “Trends in Polymer Optical Fibers,” in Proceedings of Third GR-I International Conference on New Laser Technologies and Applications. Proceedings of the SPIE (2003), Carabelas, Alexis; Baldacchini, Giuseppe; Di Lazzaro, Paolo; Zevgolis, Dimitrios, eds. Vol. 5131, pp. 213–219.
“Asahi Kasei Co.” Available: http://www.asahi-kasei.co.jp/pof/en/products/multicore.html.
“Asahi Glass Co.” Available: http://www.agc.co.jp.
N. Ortega-Quijano, F. Fanjul-Vélez, and J. L. Arce-Diego, “Optical crosstalk influence in fiber imaging endoscopes design,” Opt. Commun. 283(4), 633–638 (2010). [CrossRef]
N. Ortega-Quijano, F. Fanjul-Vélez, and J. L. Arce-Diego, “Optical crosstalk influence in fiber imaging endoscopes design,” Opt. Commun. 283(4), 633–638 (2010). [CrossRef]
G. Durana, G. Aldabaldetreku, J. Zubia, J. Arrue, and C. Tanaka, “Coupling losses in perfluorinated multi-core polymer optical fibers,” Opt. Express 16(11), 7929–7942 (2008). [CrossRef] [PubMed]
A. W. Snyder, “Coupled-Mode Theory for Optical Fibers,” J. Opt. Soc. Am. 62(11), 1267–1277 (1972). [CrossRef]
K. L. Reichenbach and C. Xu, “Numerical analysis of light propagation in image fibers or coherent fiber bundles,” Opt. Express 15(5), 2151–2165 (2007). [CrossRef] [PubMed]
G. Aldabaldetreku, J. Zubia, G. Durana, and J. Arrue, “Numerical implementation of the ray-tracing method in the propagation of light through multimode optical fibres,” in POF Modelling: Theory, Measurement and Application , C.-A. Bunge and H. Poisel, eds. (Books on Demand GmbH, Norderstedt, Germany, 2007), pp. 25–48.
2. Ray-tracing model
G. Durana, G. Aldabaldetreku, J. Zubia, J. Arrue, and C. Tanaka, “Coupling losses in perfluorinated multi-core polymer optical fibers,” Opt. Express 16(11), 7929–7942 (2008). [CrossRef] [PubMed]
2.1 Frustrated total internal reflection
2.2 Methodology of the ray-tracing model
2.2.1 A complete ray-tracing model
- − If the random number is lower than T, the coupled ray is selected (being the radiating ray discarded).
- − If random number is higher than T, the radiating ray is selected.
2.2.2 Extension of the model to include a variable number of rings
3. Results and discussion
3.1. Characteristics of the investigated fibers
“Asahi Kasei Co.” Available: http://www.asahi-kasei.co.jp/pof/en/products/multicore.html.
| Quantity | Unit | |
|---|---|---|
| Number of cores | 37 | - |
| Core diameter | 140 | μm |
| Cladding diameter | 1000 | μm |
| Area fraction1 | 76.8 | % |
| Numerical Aperture | 0.5 | - |
“Asahi Glass Co.” Available: http://www.agc.co.jp.
| Quantity | Unit | |
|---|---|---|
| Number of cores | 127 | - |
| Core diameter | 25 | μm |
| Cladding diameter | 350 | μm |
| Area fraction | 64.8 | % |
| Numerical Aperture | 0.185 | - |
3.2 Experimental set-up
“Hamamatsu Photonics,” Available: http://sales.hamamatsu.com/en/products.php.
3.3 Near- and Far-Field Patterns and FEXT calculations
3.3.1 Results for the SI-MCPOF
3.3.2 Results for the GI-MCPOF
J. Arrue, J. Zubia, G. Durana, and J. Mateo, “Parameters Affecting Bending Losses in Graded-Index Polymer Optical Fibers,” IEEE J. Sel. Top. Quantum Electron. 7(5), 836–844 (2001). [CrossRef]
D. Gloge, “Bending loss in multimode fibers with graded and ungraded core index,” Appl. Opt. 11(11), 2506–2513 (1972). [CrossRef] [PubMed]
4. Conclusions
Acknowledgments
References and links
H. Poisel, and O. Ziemann, “Trends in Polymer Optical Fibers,” in Proceedings of Third GR-I International Conference on New Laser Technologies and Applications. Proceedings of the SPIE (2003), Carabelas, Alexis; Baldacchini, Giuseppe; Di Lazzaro, Paolo; Zevgolis, Dimitrios, eds. Vol. 5131, pp. 213–219. | |
“Asahi Kasei Co.” Available: http://www.asahi-kasei.co.jp/pof/en/products/multicore.html. | |
“Asahi Glass Co.” Available: http://www.agc.co.jp. | |
Y. Koike, “Status of High Speed Plastic Optical Fiber Towards Giga House Town,” in 18th International POF Conference. Proceedings (2009). | |
D. Kalymnios, “Using Plastic Optical Fibre (POF) Cables in Multimedia Applications and Meeting Relevant Recent Standards,” in 17th International POF Conference Proceedings (Santa Clara, Calif., 2008). | |
K. Shimada, H. Sasaki, and Y. Noguchi, “The home networking system based on IEEE1394 and Ethernet Technologies,” in Proceedings of ICCE: International Conference on Consumer Electronics, (2001). pp. 234–235. | |
N. Ortega-Quijano, F. Fanjul-Vélez, and J. L. Arce-Diego, “Optical crosstalk influence in fiber imaging endoscopes design,” Opt. Commun. 283(4), 633–638 (2010). [CrossRef] | |
G. Durana, G. Aldabaldetreku, J. Zubia, J. Arrue, and C. Tanaka, “Coupling losses in perfluorinated multi-core polymer optical fibers,” Opt. Express 16(11), 7929–7942 (2008). [CrossRef] [PubMed] | |
A. W. Snyder, “Coupled-Mode Theory for Optical Fibers,” J. Opt. Soc. Am. 62(11), 1267–1277 (1972). [CrossRef] | |
A. W. Snyder and P. McIntyre, “Crosstalk between light pipes,” J. Opt. Soc. Am. 66(9), 877–882 (1976). [CrossRef] | |
A. W. Snyder, and J. D. Love, Optical waveguide theory , Chapman and Hall, ed. (London, 1983). | |
J.-M. Liu, Photonic Devices , Cambridge University Press, ed. (Cambridge, 2005). | |
K. L. Reichenbach and C. Xu, “Numerical analysis of light propagation in image fibers or coherent fiber bundles,” Opt. Express 15(5), 2151–2165 (2007). [CrossRef] [PubMed] | |
G. Aldabaldetreku, J. Zubia, G. Durana, and J. Arrue, “Numerical implementation of the ray-tracing method in the propagation of light through multimode optical fibres,” in POF Modelling: Theory, Measurement and Application , C.-A. Bunge and H. Poisel, eds. (Books on Demand GmbH, Norderstedt, Germany, 2007), pp. 25–48. | |
N. S. Kapany, Fiber Optics: Principles and Applications , Academic Press, ed. (London, 1968). | |
A. H. Cherin and E. J. Murphy, “Quasi-Ray Analysis of Crosstalk between Multimode Optical Fibers,” Bell Syst. Tech. J. 54(1), 17–45 (1975). | |
M. G. Kuzyk, Polymer Fiber Optics: Materials, Physics and Applications , Taylor & Francis, ed. (London, 2007). | |
D. Gloge and E. A. J. Marcatili, “Multimode Theory of Graded-Core Fibers,” J. Bell Syst. Tech. 52, 1563–1578 (1973). | |
“Hamamatsu Photonics,” Available: http://sales.hamamatsu.com/en/products.php. | |
S. Sasho, “A Comprehensive Bending Loss Study of Multi-core POF,” in Proceedings of 17th International POF Conference Proceedings (Santa Clara, Calif., 2008). | |
J. Arrue, J. Zubia, G. Durana, and J. Mateo, “Parameters Affecting Bending Losses in Graded-Index Polymer Optical Fibers,” IEEE J. Sel. Top. Quantum Electron. 7(5), 836–844 (2001). [CrossRef] | |
D. Gloge, “Bending loss in multimode fibers with graded and ungraded core index,” Appl. Opt. 11(11), 2506–2513 (1972). [CrossRef] [PubMed] |
OCIS Codes
(060.0060) Fiber optics and optical communications : Fiber optics and optical communications
(060.2270) Fiber optics and optical communications : Fiber characterization
(060.2300) Fiber optics and optical communications : Fiber measurements
(060.2310) Fiber optics and optical communications : Fiber optics
(080.0080) Geometric optics : Geometric optics
ToC Category:
Fiber Optics and Optical Communications
History
Original Manuscript: July 27, 2010
Revised Manuscript: September 10, 2010
Manuscript Accepted: September 13, 2010
Published: October 8, 2010
Citation
Amaia Berganza, Gotzon Aldabaldetreku, Joseba Zubia, and Gaizka Durana, "Ray-tracing analysis of crosstalk in multi-core polymer optical fibers," Opt. Express 18, 22446-22461 (2010)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-18-21-22446
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References
- H. Poisel, and O. Ziemann, “Trends in Polymer Optical Fibers,” in Proceedings of Third GR-I International Conference on New Laser Technologies and Applications. Proceedings of the SPIE (2003), Carabelas, Alexis; Baldacchini, Giuseppe; Di Lazzaro, Paolo; Zevgolis, Dimitrios, eds. Vol. 5131, pp. 213–219.
- “Asahi Kasei Co.” Available: http://www.asahi-kasei.co.jp/pof/en/products/multicore.html .
- “Asahi Glass Co.” Available: http://www.agc.co.jp .
- Y. Koike, “Status of High Speed Plastic Optical Fiber Towards Giga House Town,” in 18th International POF Conference. Proceedings (2009).
- D. Kalymnios, “Using Plastic Optical Fibre (POF) Cables in Multimedia Applications and Meeting Relevant Recent Standards,” in 17th International POF Conference Proceedings (Santa Clara, Calif., 2008).
- K. Shimada, H. Sasaki, and Y. Noguchi, “The home networking system based on IEEE1394 and Ethernet Technologies,” in Proceedings of ICCE: International Conference on Consumer Electronics, (2001). pp. 234–235.
- N. Ortega-Quijano, F. Fanjul-Vélez, and J. L. Arce-Diego, “Optical crosstalk influence in fiber imaging endoscopes design,” Opt. Commun. 283(4), 633–638 (2010). [CrossRef]
- G. Durana, G. Aldabaldetreku, J. Zubia, J. Arrue, and C. Tanaka, “Coupling losses in perfluorinated multi-core polymer optical fibers,” Opt. Express 16(11), 7929–7942 (2008). [CrossRef] [PubMed]
- A. W. Snyder, “Coupled-Mode Theory for Optical Fibers,” J. Opt. Soc. Am. 62(11), 1267–1277 (1972). [CrossRef]
- A. W. Snyder and P. McIntyre, “Crosstalk between light pipes,” J. Opt. Soc. Am. 66(9), 877–882 (1976). [CrossRef]
- A. W. Snyder, and J. D. Love, Optical waveguide theory, Chapman and Hall, ed. (London, 1983).
- J.-M. Liu, Photonic Devices, Cambridge University Press, ed. (Cambridge, 2005).
- K. L. Reichenbach and C. Xu, “Numerical analysis of light propagation in image fibers or coherent fiber bundles,” Opt. Express 15(5), 2151–2165 (2007). [CrossRef] [PubMed]
- G. Aldabaldetreku, J. Zubia, G. Durana, and J. Arrue, “Numerical implementation of the ray-tracing method in the propagation of light through multimode optical fibres,” in POF Modelling: Theory, Measurement and Application, C.-A. Bunge and H. Poisel, eds. (Books on Demand GmbH, Norderstedt, Germany, 2007), pp. 25–48.
- N. S. Kapany, Fiber Optics: Principles and Applications, Academic Press, ed. (London, 1968).
- A. H. Cherin and E. J. Murphy, “Quasi-Ray Analysis of Crosstalk between Multimode Optical Fibers,” Bell Syst. Tech. J. 54(1), 17–45 (1975).
- M. G. Kuzyk, Polymer Fiber Optics: Materials, Physics and Applications, Taylor & Francis, ed. (London, 2007).
- D. Gloge and E. A. J. Marcatili, “Multimode Theory of Graded-Core Fibers,” J. Bell Syst. Tech. 52, 1563–1578 (1973).
- “Hamamatsu Photonics,” Available: http://sales.hamamatsu.com/en/products.php .
- S. Sasho, “A Comprehensive Bending Loss Study of Multi-core POF,” in Proceedings of 17th International POF Conference Proceedings (Santa Clara, Calif., 2008).
- J. Arrue, J. Zubia, G. Durana, and J. Mateo, “Parameters Affecting Bending Losses in Graded-Index Polymer Optical Fibers,” IEEE J. Sel. Top. Quantum Electron. 7(5), 836–844 (2001). [CrossRef]
- D. Gloge, “Bending loss in multimode fibers with graded and ungraded core index,” Appl. Opt. 11(11), 2506–2513 (1972). [CrossRef] [PubMed]
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