DocumentCode :
1073953
Title :
Squeezed light for coherent communications
Author :
Slusher, Richart E. ; Yurke, Bernard
Author_Institution :
AT&T Bell Lab., Murray Hill, NJ, USA
Volume :
8
Issue :
3
fYear :
1990
fDate :
3/1/1990 12:00:00 AM
Firstpage :
466
Lastpage :
477
Abstract :
Coherent lightwave communications systems are approaching a limit where the error rates and channel capacities are limited by the quantum properties of light. This is often referred to as the shot-noise limit. If ideal laser light is used in the system, there is no way to avoid this limit. However, new states of the light field called squeezed states have recently been developed that allow an improvement in error rates below the shot-noise limit. Squeezed light concepts and recent experiments are reviewed with emphasis on aspects important to coherent communications. It is shown that channel capacity can be improved using squeezed light by only a factor of two. Larger improvements are in principle possible for error rates, e.g. a factor of three reduction in the number of required photons per bit for a 10-9 bit error rate. An example of a recent high-performance system is described where optical losses and electronic noise reduce the improvement expected using squeezed light to the 10-20% level. It is concluded that squeezed light only offers significant improvement in bit error rates for very-high-efficiency systems
Keywords :
errors; light coherence; optical links; optical losses; quantum optics; random noise; bit error rate; channel capacities; coherent communications; electronic noise; error rates; ideal laser light; lightwave communications systems; optical losses; photon number; shot-noise limit; squeezed states; Bit error rate; Channel capacity; Error analysis; Optical fiber communication; Optical interferometry; Optical losses; Optical noise; Optical sensors; Phase shift keying; Stimulated emission;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/50.50742
Filename :
50742
Link To Document :
بازگشت