Figure 3: Performance of SSB modulated 2 Gb/s digital
QPSK over 50 GHz MMW carier signal employing QDCS
with 12.5 GHz FSR. The transmission channels are hybrid
11.6-km SMF – 0-1m WL link and 11.6 km SMF-6m FSO-
0-1m WL link.
distance. Again, free-space path loss has been
attributed to this received power loss when increasing
the WL link distance. It is to be noted that 28 GHz
and 30 GHz experiments were performed on different
days and hence the difference in their receiver
sensitivities under BtB configuration is reasonable
(Ragheb, 2021).
4 50 GHZ MMW TRANSMISSION
This section presents our very recent preliminary
results of a 50 GHz MMW carrier transmission
system. As mentioned in section 2, in this case, 50
GHz beat-tone was obtained by appropriately
selecting two comb lines from the 12.5 GHz QDCS.
Moreover, we separated the two modes with the help
of a 3-dB coupler and two OBPFs where only one
mode was SSB digitally modulated with 1Gbaud
QPSK data stream using MZM and then recombined
with the unmodulated optical carrier with the help of
another 3-dB coupler. The optical signal is then
transmitted over 11.6 km SMF, 6 m FSO channel and
then received by VOA for performance analysis and
then high-speed photodiode. The output of the PD is
a modulated 50 GHz MMW carrier, which is then
passed through the WL channel consisting of two
horn antennas. After receiving the electrical signal
from the horn antenna, it is amplified with a low-
noise amplifier, down-converted to an IF of 4.6 GHz,
which is then passed to the digital storage
oscilloscope (DSO) for demodulation and post-signal
processing. It is noteworthy to mention that this type
of MMW transmission system is challenging since
the two optical tones are now decorrelated due to
passing through different length fibers, thus
increasing the phase noise of the generated MMW.
Figure 3 shows the BER versus the received optical
power, measured before the PD. Again, transmission
over BtB channel configuration is also performed,
which shows receiver sensitivity of ~6.1 dBm. On the
other hand, the received sensitivity measured after
passing through the hybrid SMF-WL and SMF-FSO-
WL channels is noted to be ~-3.0 and ~-2.5 dBm,
respectively. This corresponds to a power loss of ~3
dB when the signal propagates over the 1 m WL
distance. More experimental work is in progress to
increase the QPSK data rate and WL link length while
pushing the generation and transmission of MMWs
beyond 50 GHz.
5 SUMMARY
We have summarized our recent progress of
deploying mid L-band Qdash LD in MMW
applications. In particular, we successfully generated
and transmitted 28 and 30 GHz MMW carriers overs
various hybrid channels, viz. 20 km SMF – 6 m WL
and 20 km SMF – 5m FSO – 2 m WL, with 2 Gb/s
QPSK data. Moreover, we also highlighted our very
recent preliminary results of pushing the generated
MMW frequency to 50 GHz employing a system with
increased phase noise. Nevertheless, a successful
transmission for 2 Gb/s QPSK data is achieved over
11.6 km SMF – 6 m FSO – 1 m WL channel.
ACKNOWLEDGEMENTS
This work was supported by Deanship of Research
Oversight and Coordination, via Center for
Communication Systems and Sensing, King Fahd
University of Petroleum and Minerals, grant no.
INCS2103.
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Uwaechia, A. N., and Mahyuddin, N. M. (2020). A
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Song, C., Barrios, P., Jiang, W. and Zhang. (2019).
Monolithic InAs/InP quantum dash dual-wavelength
DFB laser with ultra-low noise common cavity modes
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EVM (%)
Received Optical Power