Multi-Antenna Configuration with Reduced Passive Self-Interference for Full-Duplex Intelligent Transportation System
Abstract
In this paper, we propose a closely spaced multi-antenna system with \textit{passive} self-interference cancellation (\textit{p}-SIC) of dB between the transmitter and receiver antenna for full-duplex application. The \textit{p}-SIC is achieved by field confinement near individual antennae using shorted metallic vias and the application of U-shaped perturbation in the ground plane. The \textit{p}-SIC technique is initially implemented in a 1-Tx and 1-Rx antenna system and explained using transmission line-based theory. Further, it is extended to 1-Tx and 2-Rx configurations. Here the proposed full-duplex antenna system is designed at GHz ( GHz, IEEE 802.11p / WAVE technology) intelligent transportation system (ITS) application band using a microstrip patch configuration. The individual antenna exhibits an impedance bandwidth of MHz ( GHz), dBi gain at GHz operating frequency and X-pol level less than dB in the broad side direction. The proposed FD configuration exhibits of less than dB over the complete operating band and dB is achieved at the operating frequency between the Tx and Rx. Similarly, of less the dB is achieved between 2-Rx antennas for a three-element FD configuration. The design procedure of the proposed FD configuration is explained and verified using fabrication and measurement. An experimental demonstration of the self-interference channel and its suppression using the proposed \textit{p}-SIC technique is also provided. Further, to study the diversity performance of the proposed multi-antenna configuration, the MIMO performance metrics such as \textit{ECC} and \textit{CCL} are evaluated using simulation and measurement.
Cite
@article{arxiv.2209.15379,
title = {Multi-Antenna Configuration with Reduced Passive Self-Interference for Full-Duplex Intelligent Transportation System},
author = {Jogesh Chandra Dash and Debdeep Sarkar},
journal= {arXiv preprint arXiv:2209.15379},
year = {2022}
}