A Superimposed QD-Based Optical Antenna for VLC: White LED Source

被引:5
作者
Chamani, Shaghayegh [1 ]
Rostami, Ali [1 ,2 ]
Mirtaheri, Peyman [3 ]
机构
[1] Univ Tabriz, Photon & Nanocrystal Res Lab PNRL, Tabriz 5166614761, Iran
[2] ASEPE Co, SP EPT Lab, Ind Pk Adv Technol, Tabriz 5169654916, Iran
[3] OsloMet Oslo Metropolitan Univ, Dept Mech Elect & Chem Engn, N-0167 Oslo, Norway
关键词
visible light communication (VLC); optical wireless communication (OWC); superimposed quantum dots; light-emitting diode (LED); Monte Carlo ray-tracing simulation; luminescent solar concentrator (LSC); optical receiver antenna; Li-Fi; LUMINESCENT SOLAR CONCENTRATORS; VISIBLE-LIGHT COMMUNICATIONS; HIGHLY EFFICIENT; COMMUNICATION; DESIGN; FILMS; SHAPE; LENS;
D O I
10.3390/nano12152573
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Visible light communication (VLC) is a versatile enabling technology for following high-speed wireless communication because of its broad unlicensed spectrum. In this perspective, white light-emitting diodes (LED) provide both illumination and data transmission simultaneously. To accomplish a VLC system, receiver antennas play a crucial role in receiving light signals and guiding them toward a photodetector to be converted into electrical signals. This paper demonstrates an optical receiver antenna based on luminescent solar concentrator (LSC) technology to exceed the conservation of etendue and reach a high signal-to-noise ratio. This optical antenna is compatible with all colors of LEDs and achieves an optical efficiency of 3.75%, which is considerably higher than the similar reported antenna. This antenna is fast due to the small attached photodetector-small enough that it can be adapted for electronic devices-which does not need any tracking system. Moreover, numerical simulation is performed using a Monte Carlo ray-tracing model, and results are extracted in the spectral domain. Finally, the fate of each photon and the chromaticity diagram of the collected photons' spectra are specified.
引用
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页数:15
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