| Literature DB >> 29158561 |
Chien-Hung Yeh1, Liang-Yu Wei2, Chi-Wai Chow3,4.
Abstract
In this work, we propose and demonstrate for the first time up to our knowledge, using a 682 nm visible vertical-cavity surface-emitting laser (VCSEL) applied in a bi-directional wavelength remodulated VLC system with a free space transmission distance of 3 m. To achieve a high VLC downstream traffic, spectral efficient orthogonal-frequency-division-multiplexing quadrature-amplitude-modulation (OFDM-QAM) with bit and power loading algorithms are applied on the VCSEL in the central office (CO). The OFDM downstream wavelength is remodulated by an acousto-optic modulator (AOM) with OOK modulation to produce the upstream traffic in the client side. Hence, only a single VCSEL laser is needed for the proposed bi-directional VLC system, achieving 10.6 Gbit/s OFDM downstream and 2 Mbit/s remodulated OOK upstream simultaneously. For the proposed system, as a single laser source with wavelength remodulation is used, the laser wavelength and temperature managements at the client side are not needed; and the whole system could be cost effective and energy efficient.Entities:
Year: 2017 PMID: 29158561 PMCID: PMC5696457 DOI: 10.1038/s41598-017-15856-x
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Observed SNR and bit number of each OFDM subcarrier within the modulation frequency of 1.898 GHz in a free space transmission length of 3 m. (b) Measured corresponding constellation diagrams of OFDM modulation with bit-power-loading algorithm.
Figure 2Related VLC data rates and BERs in the free space transmission lengths of 1 and 3 m, respectively.
Figure 3Measured L-I curve of VCSEL laser.
Figure 4Measured Q factor performance with 2 Mbit/s remodulated OOK format at the bias currents of 3, 3.5 and 4 mA in the free space transmission lengths of 1 and 3 m, respectively. The insets are corresponding eye diagrams.
Figure 5Architecture of the proposed bi-directional VCSEL-based VLC system.