Polarization-insensitive fiber optical parametric amplifier based on polarization diversity technique with dual parallel pumps

Lu Yin, Xin-zhu Sang, Qi Zhang, Xiang-jun Xin, Chong-xiu Yu, Da-xiong Xu

Optoelectronics Letters ›› 2011, Vol. 7 ›› Issue (4) : 241-245.

Optoelectronics Letters ›› 2011, Vol. 7 ›› Issue (4) : 241-245. DOI: 10.1007/s11801-011-1014-y
Article

Polarization-insensitive fiber optical parametric amplifier based on polarization diversity technique with dual parallel pumps

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Abstract

By analyzing the principle of dual-pump parametric amplification and the polarization dependent gain of fiber optical parametric amplifier (FOPA), a polarization-insensitive FOPA based on polarization-diversity technique with dual parallel pumps is presented. The performances of polarization-insensitivity, gain and BER are theoretically analyzed and numerically simulated by comparing the proposed scheme with parallel pump solution and orthogonal pump solution. The presented solution can reduce the complexity of state of polarization (SoP) of pumps.

Keywords

Signal Gain / Polarize Beam Splitter / Relative Angle / Optical Fiber Communication / IEEE Photonic Technology Letter

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Lu Yin, Xin-zhu Sang, Qi Zhang, Xiang-jun Xin, Chong-xiu Yu, Da-xiong Xu. Polarization-insensitive fiber optical parametric amplifier based on polarization diversity technique with dual parallel pumps. Optoelectronics Letters, 2011, 7(4): 241‒245 https://doi.org/10.1007/s11801-011-1014-y

References

[1]
RogerH.. Stolen and John E. BjorkholmIEEE Journal of Quantum Electronics, 1982, QE-18: 1062
[2]
MaY., SiL., WangX., ZhouP., XuX.. Optoelectronics Letters, 2009, 5: 18
CrossRef Google scholar
[3]
Provino L., Maillotte H., Lantz E., Sylvestre T. and Dudley J. M., Lasers and Electro-Optics Europe, Conference Digest, 1 (2000).
[4]
Govind P. Agrawal, Nonlinear Fiber Optics (The 3rd Edition), World Publishing Corporation, 389 (2001).
[5]
LiB., YuR.. Optoelectronics Letters, 2009, 5: 364
CrossRef Google scholar
[6]
KylemarkP., KarlssonM., TorounidisT., AndreksonP. A.. Journal of Lightwave Technology, 2007, 25: 612
CrossRef Google scholar
[7]
HansrydJ., AndreksonP. A.. IEEE Journal of Selected Topics in Quantum Electronics, 2002, 8: 506
CrossRef Google scholar
[8]
TorounidisT., AndreksonP. A., OlssonB.-E.. IEEE Photonics Technology Letters, 2006, 18: 1194
CrossRef Google scholar
[9]
A. Vedadi, M. Jamshidifar and M. E. Marhic, IEEE/LEOS Winter Topicals Meeting Series, 231 (2009).
[10]
S. Radic, C. J. McKinstrie, R. M. Jopson and J. C. Centanni, Optical Fiber Communication Conference, TuC4 (2004).
[11]
TangR., DevganP., GrigoryanV. S., KumarP.. Electronics Letters, 2005, 41: 1072
CrossRef Google scholar
[12]
Oo-Kaw Lim, Grigoryan V., Shin M. and Kumar P., IEEE/ LEOS Winter Topical Meeting Series, 43 (2008).
[13]
YamanF., LinQ., AgrawalG. P.. IEEE Photonics Technology Letters, 2006, 18: 2335
CrossRef Google scholar
[14]
Colin J. McKinstrie, Manalapan and Chongjin Xie, United States Patent Application Publication, US 2010/0103505 A1, 2010.
[15]
Luo T., Yu C., Yan L. S., Pan Z., Wang Y., Song Y. and Willner A. E., Optical Fiber Communication Conference 1, TuCl (2004).
[16]
K. K. Y. Wong, M. E. Marhic, K. Uesaka and L. G. Kazovsky, Optoelectronic and Communications Conference, 609 (2001).
[17]
K. K. Y. Wong, M. E. Marhic, K. Uesaka and L. G. Kazovsky, the Conference on Lasers and Electro-Optics, 431 (2002).
[18]
WongK. K. Y., MarhicM. E., UesakaK., KazovskyL. G.. IEEE Photonics Technology Letters, 2004, 4: 911
[19]
K. K. Y. Wong, Michel E. Marhic, Katsumi Uesaka and L. G. Kazovsky, Optical Fiber Communication Conference and Exhibit, 129 (2002).
[20]
G. Kalogerakis, M. E. Marhic and L. G. Kazovsky, Optical Fiber Communication Conference and the National Fiber Optic Engineers Conference, 3 (2006).

This work has been supported by the National Basic Research Program of China (2010CB328304).

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