Title :
Free-space optical communication employing subcarrier modulation and spatial diversity in atmospheric turbulence channel
Author :
Popoola, W.O. ; Ghassemlooy, Z. ; Allen, J.I.H. ; Leitgeb, E. ; Gao, S.
Author_Institution :
Northumbria Commun. Res. Lab. (NCRLab), Northumbria Univ., Newcastle upon Tyne
Abstract :
An expression for the bit error rate of a multiple subcarrier intensity-modulated atmospheric optical communication system employing spatial diversity is derived. Spatial diversity is used to mitigate scintillation caused by atmospheric turbulence, which is assumed to obey log-normal distribution. Optimal but complex maximum ratio, equal gain combining (EGC) and relatively simple selection combining spatial diversity techniques in a clear atmosphere are considered. Each subcarrier is modulated using binary phase shift keying. Laser irradiance is subsequently modulated by a subcarrier signal, and a direct detection PIN receiver is employed (i.e. intensity modulation/direction detection). At a subcarrier level, coherent demodulation is used to extract the transmitted data/information. The performance of on-off-keying is also presented and compared with the subcarrier intensity modulation under the same atmospheric conditions.
Keywords :
atmospheric light propagation; atmospheric turbulence; log normal distribution; optical links; atmospheric conditions; atmospheric turbulence channel; binary phase shift keying; bit error rate; equal gain combining; free-space optical communication; intensity modulation; laser irradiance; log-normal distribution; multiple subcarrier intensity-modulated atmospheric optical communication; scintillation; spatial diversity; subcarrier modulation;
Journal_Title :
Optoelectronics, IET
DOI :
10.1049/iet-opt:20070030