Design of a transversal equalizer for electronic dispersion compensation in optical communication links

Zhen-bin Gao, Yong Shi, Bo Wang, Xiang-ye Zeng

Optoelectronics Letters ›› 2011, Vol. 7 ›› Issue (1) : 37-40.

Optoelectronics Letters ›› 2011, Vol. 7 ›› Issue (1) : 37-40. DOI: 10.1007/s11801-011-0134-8
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Design of a transversal equalizer for electronic dispersion compensation in optical communication links

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Abstract

A programmable transversal equalizer for electronic dispersion compensation (EDC) in optical fiber communication systems is developed. Based on the SiGe technology with a cut-off frequency of 80 GHz, the equalizer consists of 6 seriesparallel amplifiers as delay units and 7 Gilbert variable gain amplifiers as taps, which ensure that the equalizer can work at the bit rate of 10 Gb/s. With different tap gains, the forward voltage gain of the transversal equalizer varies, which demonstrates that the equalizer has various filtering characteristics such as low pass filtering, band pass filtering, band reject filtering, and notch filtering, so it can effectively simulate the inverse transfer function of dispersive channels in optical communications, and can be used for compensating the inter-symbol interference and other nonlinear problems caused by dispersion. The equalizer (including pads) occupies an area of 0.40 mm×1.08 mm, and its total power dissipation is 400 mW with 3.3 V power supply.

Keywords

Polarization Mode Dispersion / Delay Unit / Variable Gain Amplifier / Optical Fiber Communication System / Transversal Filter

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Zhen-bin Gao, Yong Shi, Bo Wang, Xiang-ye Zeng. Design of a transversal equalizer for electronic dispersion compensation in optical communication links. Optoelectronics Letters, 2011, 7(1): 37‒40 https://doi.org/10.1007/s11801-011-0134-8

References

[1]
Andrew C. Singer, Naresh R Shanbhaq and Hyeon-Min Bae, Proceedings of International Zurich Seminar on Communications, 48 (2008).
[2]
ChandramouliS., BienF.. IEEE Transactions on Microwave Theory and Techniques, 2007, 55: 2740
CrossRef Google scholar
[3]
MadureirM. A. M., MonteiroP. M. P.. IEEE Journal of Solid-State Circuits, 2003, 38: 1166
[4]
WuH., TiernoJ. A., PepeljugoskiP., SchaubJ., GowdaS., KashJ. A., AliHajimiri. IEEE Journal of Solid-State Circuits, 2003, 38: 2131
CrossRef Google scholar
[5]
XuB., QiuK.. Journal of Optoelectronics · Laser, 2009, 20: 188
[6]
Foster F. Dai, Shengfang Wei and Richard Jaeger, IEEE International Symposium on Circuits and Systems (ISCAS), 5750 (2005).
[7]
Behzad. Razavi, Design of Analog CMOS Integrated Circuits, Tata McGraw-Hill, 2002.
[8]
LeeT. H.. The Design of CMOS Radio Frequency Integrated Circuits, 2006, Second EditionBeijing, Publishing House of Electronics Industry
[9]
ReinH. M., MollerM.. IEEE Journal of Solid-State Circuits, 1996, 31: 1076
CrossRef Google scholar

This work has been supported by the Natural Science Foundation of Hebei Province (No.F2008000116).

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