Title :
Costas Loop Homodyne Detection for 20-Gb/s QPSK Signal on the Optical Frequency Synchronous Network
Author :
Koga, Masafumi ; Shigeta, Yusuke ; Shirazawa, Futoshi ; Ohta, Hiroshi ; Mizutori, Akira
Author_Institution :
Electr. Eng. Dept., Oita Univ., Oita, Japan
Abstract :
This paper demonstrates a decision-directed, stable and high-sensitivity Costas loop homodyne receiver for 20-Gb/s QPSK signals based on our concept of the “optical frequency synchronous network.” The receiver sensitivity is shown to approach the theoretical shot-noise limit (as degraded by spontaneous emission) and the symbol-error rate is stably measured to be around 10-3 even though the optical signal was chirped by fiber chromatic dispersion and was delayed by 50% of the symbol period. This high-performance phase-locked loop can be realized by utilizing optical frequency stabilized (synchronized) several kilohertz spectral line-width external cavity laser diodes (E-LD´s), compensating the frequency modulation (FM) response of the E-LDs, and consisting of only differential mode logical circuits. The compensation of the E-LD´s FM response by the loop filter improves the receiver sensitivity by 3 dB.
Keywords :
error statistics; homodyne detection; optical fibre networks; optical filters; optical receivers; phase locked loops; quadrature phase shift keying; semiconductor lasers; Costas loop homodyne detection; QPSK signals; bit rate 20 Gbit/s; differential mode logical circuits; fiber chromatic dispersion; frequency modulation response compensation; high-performance phase-locked loop; high-sensitivity Costas loop homodyne receiver; kilohertz spectral line-width external cavity laser diodes; loop filter; optical frequency stabilization; optical frequency synchronous network; receiver sensitivity; symbol period; symbol-error rate; theoretical shot-noise limit; Frequency modulation; Optical fiber sensors; Optical fibers; Optical filters; Optical receivers; Costas loop; Optical fiber communication; Semiconductor lasers; optical fiber communication; phase shift keying; semiconductor lasers;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2015.2474713