Degree of polarization technique used in PMD compensation of optical microwave transmission systems

Polarization-mode dispersion (PMD) can severely degrade the performance of optical microwave transmission systems by inducing a periodic power fading of the received RF signal that depends on the subcarrier frequency and accumulated differential group delay (DGD) along fiber. We derive a compact ana...

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Bibliographic Details
Published inOptics communications Vol. 236; no. 1; pp. 109 - 114
Main Authors Liu, Hankui, Zhang, Xianmin, Chen, Kangsheng
Format Journal Article
LanguageEnglish
Published Amsterdam Elsevier B.V 01.06.2004
Elsevier Science
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ISSN0030-4018
1873-0310
DOI10.1016/j.optcom.2004.03.023

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Summary:Polarization-mode dispersion (PMD) can severely degrade the performance of optical microwave transmission systems by inducing a periodic power fading of the received RF signal that depends on the subcarrier frequency and accumulated differential group delay (DGD) along fiber. We derive a compact analytical expression of the degree of polarization (DOP) of optical signal using Jones and Stokes representations based on first-order assumption. Using this expression, we quantify the signal DOP fading induced by PMD by means of numerical simulations for BPSK and ASK modulations. The dependences of signal DOP on subcarrier frequency, accumulated DGD, and modulation formats have been demonstrated. It is found that signal DOP has similar periodic fading with the power of received RF signal, which is caused by DGD. Moreover, if the DOP technique is used in the PMD compensation of the optical microwave transmission systems, the DOP degradation is more sensitive to the DGD in the system modulated by BPSK than by ASK. The performance of this technique is immune to residual chromatic dispersion of the fiber.
ISSN:0030-4018
1873-0310
DOI:10.1016/j.optcom.2004.03.023