TY - JOUR
T1 - A 135-km 8192-split carrier distributed DWDM-TDMA PON with 2 × 32 × 10 Gb/s capacity
AU - Ossieur, Peter
AU - Antony, Cleitus
AU - Clarke, Aisling M.
AU - Naughton, Alan
AU - Krimmel, Heinz George
AU - Chang, Y.
AU - Ford, Colin
AU - Borghesani, Anna
AU - Moodie, David G.
AU - Poustie, Alistair
AU - Wyatt, Richard
AU - Harmon, Bob
AU - Lealman, Ian
AU - Maxwell, Graeme
AU - Rogers, Dave
AU - Smith, David W.
AU - Nesset, Derek
AU - Davey, Russell P.
AU - Townsend, Paul D.
PY - 2011
Y1 - 2011
N2 - We present a hybrid dense wavelength-division-multiplexed time-division multiple access passive optical network (DWDM-TDMA PON) with record performance in terms of reach (135.1 km of which 124 km were field-installed fibers), number of supported optical network units (ONUs-8192) and capacity (symmetric 320 Gb/s). This was done using 32-, 50-GHz-spaced downstream wavelengths and another 32-, 50-GHz-spaced upstream wavelengths, each carrying 10 Gb/s traffic (256 ONUs per wavelength, upstream operated in burst mode). The 10 Gb/s downstream channels were based upon DFB lasers (arranged in a DWDM grid), whose outputs were modulated using a electro-absorption modulator (EAM). The downstream channels were terminated using avalanche photodiodes in the optical networks units (ONUs). Erbium-doped fiber amplifiers (EDFAs) provided the gain to overcome the large fiber and splitting losses. The 10 Gb/s upstream channels were based upon seed carriers (arranged in a DWDM grid) distributed from the service node towards the optical network units (ONUs) located in the user's premises. The ONUs boosted, modulated, and reflected these seed carriers back toward the service node using integrated 10 Gb/s reflective EAM-SOAs (EAM-semiconductor optical amplifier). This seed carrier distribution scheme offers the advantage that all wavelength referencing is done in the well-controlled environment of the service node. The bursty upstream channels were further supported by gain stabilized EDFAs and a 3R 10 Gb/s burst-mode receiver with electronic dispersion compensation. The demonstrated network concept allows integration of metro and optical access networks into a single all-optical system, which has potential for capital and operational expenditure savings for operators.
AB - We present a hybrid dense wavelength-division-multiplexed time-division multiple access passive optical network (DWDM-TDMA PON) with record performance in terms of reach (135.1 km of which 124 km were field-installed fibers), number of supported optical network units (ONUs-8192) and capacity (symmetric 320 Gb/s). This was done using 32-, 50-GHz-spaced downstream wavelengths and another 32-, 50-GHz-spaced upstream wavelengths, each carrying 10 Gb/s traffic (256 ONUs per wavelength, upstream operated in burst mode). The 10 Gb/s downstream channels were based upon DFB lasers (arranged in a DWDM grid), whose outputs were modulated using a electro-absorption modulator (EAM). The downstream channels were terminated using avalanche photodiodes in the optical networks units (ONUs). Erbium-doped fiber amplifiers (EDFAs) provided the gain to overcome the large fiber and splitting losses. The 10 Gb/s upstream channels were based upon seed carriers (arranged in a DWDM grid) distributed from the service node towards the optical network units (ONUs) located in the user's premises. The ONUs boosted, modulated, and reflected these seed carriers back toward the service node using integrated 10 Gb/s reflective EAM-SOAs (EAM-semiconductor optical amplifier). This seed carrier distribution scheme offers the advantage that all wavelength referencing is done in the well-controlled environment of the service node. The bursty upstream channels were further supported by gain stabilized EDFAs and a 3R 10 Gb/s burst-mode receiver with electronic dispersion compensation. The demonstrated network concept allows integration of metro and optical access networks into a single all-optical system, which has potential for capital and operational expenditure savings for operators.
KW - Burst-mode receiver (BMRx)
KW - electroabsorption modulator (EAM)
KW - erbium-doped fiber amplifier (EDFA)
KW - passive optical network (PON)
KW - semiconductor optical amplifier (SOA)
UR - https://www.scopus.com/pages/publications/79551623991
U2 - 10.1109/JLT.2010.2088109
DO - 10.1109/JLT.2010.2088109
M3 - Article
AN - SCOPUS:79551623991
SN - 0733-8724
VL - 29
SP - 463
EP - 474
JO - Journal of Lightwave Technology
JF - Journal of Lightwave Technology
IS - 4
M1 - 5605214
ER -