Optical orthogonal frequency division multiplexed transmission using all-optical discrete Fourier transform

Cited 10 time in webofscience Cited 12 time in scopus
  • Hit : 351
  • Download : 0
Orthogonal frequency division multiplexing (OFDM) can provide spectrally efficient communication channels because it can utilize carrier orthogonality and various impairment mitigation methods. An optical OFDM signal can be generated electronically to multiplex lower-rate carriers. In recent advancements, OFDM signals are also shown to be generated and demultiplexed by all-optical discrete Fourier transform (DFT), overcoming the speed limit of electronics for >Tbps capacity. High-performance DFT devices, such as arrayed waveguide grating (AWG) or planar lightwave circuit (PLC), are critically required to obtain strong orthogonality for scalable all-optical OFDM (AO-OFDM) system implementations. Advanced techniques such as coherent modulation and detection with digital impairment mitigation are also important for long-reach AO-OFDM transmissions. More recently, optical superchannel schemes have been introduced utilizing coherent detection for multi-Tbps AO-OFDM transmissions. This paper reviews the device and system aspects for the AO-OFDM technology, including a generalized theoretical model to provide an indepth understanding.
Publisher
WILEY-V C H VERLAG GMBH
Issue Date
2013-07
Language
English
Article Type
Review
Keywords

OFDM TRANSMISSION; COMPENSATION; CIRCUIT; ROUTERS; DESIGN; FIBER; ENCODERS/DECODERS; DEMULTIPLEXER; EQUALIZATION; DISPERSION

Citation

LASER & PHOTONICS REVIEWS, v.7, no.4, pp.539 - 553

ISSN
1863-8880
DOI
10.1002/lpor.201200050
URI
http://hdl.handle.net/10203/201586
Appears in Collection
EE-Journal Papers(저널논문)
Files in This Item
There are no files associated with this item.
This item is cited by other documents in WoS
⊙ Detail Information in WoSⓡ Click to see webofscience_button
⊙ Cited 10 items in WoS Click to see citing articles in records_button

qr_code

  • mendeley

    citeulike


rss_1.0 rss_2.0 atom_1.0