DocumentCode :
1778293
Title :
Coherent radio-over-fiber (CRoF) approach for heterogeneous wireless-optical networks
Author :
Babiel, S. ; Chuenchom, Rattana ; Stohr, Andreas ; Mitchell, Jason E. ; Leiba, Y.
Author_Institution :
Dept. of Optoelectron., Univ. Duisburg-Essen, Duisburg, Germany
fYear :
2014
fDate :
20-23 Oct. 2014
Firstpage :
25
Lastpage :
27
Abstract :
A new coherent optical heterodyne radio-over-fiber (CRoF) scheme is proposed for seamless integration of next generation millimeter-wave wireless systems into a (ultra-dense) next generation passive optical network (NG-PON2). For seamless integration with the (ultra-dense) WDM infrastructure of high-capacity and longer-reach NG-PON2 networks, we propose novel radio access units (RAU) using coherent optical heterodyne detection for the generation of the millimeter-wave radio signals. The proposed CRoF concept supports the provision of multiple services over a single optical distribution network including next generation optical and wireless access services and high-capacity fixed wireless links for mobile backhaul. A proof-of-concept experiment is demonstrated in the context of backhauling. An E-band RAU utilizing CRoF is used for converting 2.5 Gb/s optical baseband data after 20 km fiber transmission to a 76 GHz wireless signal. After subsequent wireless transmission over 40 m (limited by the lab environment), the wireless E-band signal is directly reconverted to 2.5 Gb/s baseband data using a low-cost 76 GHz wireless receiver with RF envelope detection. The receiver´s sensitivity is only -47 dBm for a bit error rate (BER) of 2.10-3. Within international regulations, the transmit RF power can be further increased by about 68 dB, i.e. wireless distances way beyond 2 km can be expected even in the case of rain.
Keywords :
error statistics; heterodyne detection; microwave photonics; optical fibre networks; optical receivers; passive optical networks; radio-over-fibre; wavelength division multiplexing; wireless channels; BER; CRoF concept; E-band RAU; RF envelope detection; WDM infrastructure; backhauling; bit error rate; bit rate 2.5 Gbit/s; coherent optical heterodyne detection; coherent optical heterodyne radio-over-fiber scheme; distance 20 km; fiber transmission; frequency 76 GHz; heterogeneous wireless-optical networks; high-capacity NG-PON2 networks; high-capacity fixed wireless links; international regulations; longer-reach NG-PON2 networks; low-cost wireless receiver; millimeter-wave radio signal generation; mobile backhaul; multiple services; next generation millimeter-wave wireless systems; next generation optical access services; next generation passive optical network; optical baseband data; proof-of-concept experiment; radio access units; rain; receiver sensitivity; single optical distribution network; subsequent wireless transmission; transmit RF power; wireless E-band signal; wireless access services; wireless distances; Adaptive optics; Optical attenuators; Optical fibers; Optical mixing; Optical receivers; Passive optical networks; Wireless communication; Coherent optical detection; Millimeter-wave Wireless; NG-PON2; Radio-over-Fiber; WDM networks;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Microwave Photonics (MWP) and the 2014 9th Asia-Pacific Microwave Photonics Conference (APMP), 2014 International Topical Meeting on
Conference_Location :
Sapporo
Type :
conf
DOI :
10.1109/MWP.2014.6994480
Filename :
6994480
Link To Document :
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