TY - JOUR
T1 - A Tb/s Indoor MIMO Optical Wireless Backhaul System Using VCSEL Arrays
AU - Kazemi, Hossein
AU - Sarbazi, Elham
AU - Soltani, Mohammad Dehghani
AU - El-Gorashi, Taisir E.H.
AU - Elmirghani, Jaafar M.H.
AU - Penty, Richard V.
AU - White, Ian H.
AU - Safari, Majid
AU - Haas, Harald
N1 - Publisher Copyright:
© 1972-2012 IEEE.
PY - 2022/6/1
Y1 - 2022/6/1
N2 - In this paper, the design of a multiple-input multiple-output (MIMO) optical wireless communication (OWC) link based on vertical cavity surface emitting laser (VCSEL) arrays is systematically carried out with the aim to support data rates in excess of 1 Tb/s for the backhaul of sixth generation (6G) indoor wireless networks. The proposed design combines direct current optical orthogonal frequency division multiplexing (DCO-OFDM) and a spatial multiplexing MIMO architecture. For such an ultra-high-speed line-of-sight (LOS) OWC link with low divergence laser beams, maintaining alignment is of high importance. In this paper, two types of misalignment error between the transmitter and receiver are distinguished, namely, radial displacement error and orientation angle error, and they are thoroughly modeled in a unified analytical framework assuming Gaussian laser beams, resulting in a generalized misalignment model (GMM). The derived GMM is then extended to MIMO arrays and the performance of the MIMO-OFDM OWC system is analyzed in terms of the aggregate data rate. Novel insights are provided into the system performance based on computer simulations by studying various influential factors such as beam waist, array configuration and different misalignment errors, which can be used as guidelines for designing short range Tb/s MIMO OWC systems.
AB - In this paper, the design of a multiple-input multiple-output (MIMO) optical wireless communication (OWC) link based on vertical cavity surface emitting laser (VCSEL) arrays is systematically carried out with the aim to support data rates in excess of 1 Tb/s for the backhaul of sixth generation (6G) indoor wireless networks. The proposed design combines direct current optical orthogonal frequency division multiplexing (DCO-OFDM) and a spatial multiplexing MIMO architecture. For such an ultra-high-speed line-of-sight (LOS) OWC link with low divergence laser beams, maintaining alignment is of high importance. In this paper, two types of misalignment error between the transmitter and receiver are distinguished, namely, radial displacement error and orientation angle error, and they are thoroughly modeled in a unified analytical framework assuming Gaussian laser beams, resulting in a generalized misalignment model (GMM). The derived GMM is then extended to MIMO arrays and the performance of the MIMO-OFDM OWC system is analyzed in terms of the aggregate data rate. Novel insights are provided into the system performance based on computer simulations by studying various influential factors such as beam waist, array configuration and different misalignment errors, which can be used as guidelines for designing short range Tb/s MIMO OWC systems.
KW - Adaptive optics
KW - generalized misalignment model (GMM)
KW - Indoor optical wireless communication (OWC)
KW - Laser beams
KW - MIMO communication
KW - multiple-input multiple-output orthogonal frequency division multiplexing (MIMO-OFDM)
KW - Optical receivers
KW - Optical transmitters
KW - Terabit/s backhaul
KW - vertical cavity surface emitting laser (VCSEL) array
KW - Vertical cavity surface emitting lasers
KW - Wireless communication
UR - http://www.scopus.com/inward/record.url?scp=85127740045&partnerID=8YFLogxK
U2 - 10.1109/TCOMM.2022.3165187
DO - 10.1109/TCOMM.2022.3165187
M3 - Article
AN - SCOPUS:85127740045
SN - 0090-6778
VL - 70
SP - 3995
EP - 4012
JO - IEEE Transactions on Communications
JF - IEEE Transactions on Communications
IS - 6
ER -