Title :
Bidirectional millimeter-wave radio-over-fiber system based on photodiode mixing and optical heterodyning
Author :
Paresys, F. ; Shao, Tong ; MAURY, G. ; Le Guennec, Yannis ; Cabon, Beatrice
Author_Institution :
Electromagn. & Photonics Lab. of Hyperfrequency & Characterization (IMEP-LAHC), Minatec Grenoble, Grenoble, France
Abstract :
We demonstrate a bidirectional millimeter-wave (mmW) radio-over-fiber system based on the use of a p-i-n photodiode (PD) biased in the nonlinear regime. Since frequency down-conversion and photodetection are carried out by a single photodiode, the base station (BS) architecture is simplified. Down-link transmission employs an optical heterodyning technique for mmW generation and remote local oscillator (LO) delivery to BSs. The up-link scheme uses the electrical port of the PD as an input for optoelectronic mixing with the remotely delivered LO. Up-link and down-link have been successfully demonstrated for 397 Mbps and 794 Mbps binary phase-shift keying complying with the 60 GHz ECMA 387 standard. Error vector magnitude measurements and theoretical analysis are discussed as regards optimal PD bias conditions. It is shown that PD can be used in this bidirectional system without any switching of the PD bias.
Keywords :
millimetre wave devices; optical frequency conversion; optoelectronic devices; oscillators; p-i-n photodiodes; phase shift keying; radio-over-fibre; BS architecture; ECMA 387 standard; LO delivery; base station architecture; bidirectional millimeter-wave radio-over-fiber system; bidirectional system; binary phase-shift keying; down-link transmission; electrical port; error vector magnitude measurements; frequency down-conversion; mmW generation; optical heterodyning; optimal PD bias conditions; optoelectronic mixing; p-i-n photodiode; photodetection; photodiode mixing; remote local oscillator delivery; theoretical analysis; up-link scheme; Binary phase shift keying; Mixers; Optical mixing; Optical modulation; Passive optical networks; Photodiodes; Bidirectional transmission; ECMA 387; Millimeter wave; Optical heterodyning; Photodiode mixing; Radio-over-fiber;
Journal_Title :
Optical Communications and Networking, IEEE/OSA Journal of
DOI :
10.1364/JOCN.5.000074