Architectures, Antennas and Circuits for Millimeter-wave Wireless Full-Duplex Applications

Demand for wireless network capacity keeps growing exponentially every year, as a result a 1000-fold increase in data traffic is projected over the next 10 years in the context of 5G wireless networks. Solutions for delivering the 1000-fold increase in capacity fall into three main categories: deplo...

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Main Author: Dinc, Tolga
Language:English
Published: 2018
Subjects:
Online Access:https://doi.org/10.7916/D8MP6KG3
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spelling ndltd-columbia.edu-oai-academiccommons.columbia.edu-10.7916-D8MP6KG32019-05-09T15:15:48ZArchitectures, Antennas and Circuits for Millimeter-wave Wireless Full-Duplex ApplicationsDinc, Tolga2018ThesesElectrical engineeringWireless communication systemsMillimeter wave communication systemsAntennas (Electronics)Electric circuitsDemand for wireless network capacity keeps growing exponentially every year, as a result a 1000-fold increase in data traffic is projected over the next 10 years in the context of 5G wireless networks. Solutions for delivering the 1000-fold increase in capacity fall into three main categories: deploying smaller cells, allocating more spectrum and improving spectral efficiency of wireless systems. Smaller cells at RF frequencies (1-6GHz) are unlikely to deliver the demanded capacity increase. On the other hand, millimeter-wave spectrum (frequencies over 24GHz) offers wider, multi-GHz channel bandwidths, and therefore has gained significant research interest as one of the most promising solutions to address the data traffic demands of 5G. Another disruptive technology is full-duplex which breaks a century-old assumption in wireless communication, by simultaneous transmission and reception on the same frequency channel. In doing so, full-duplex offers many benefits for wireless networks, including an immediate spectral efficiency improvement in the physical layer. Although FD promises great benefits, self-interference from the transmitter to its own receiver poses a fundamental challenge. The self-interference can be more than a billion times stronger than the desired signal and must be suppressed below the receiver noise floor. In recent years, there has been some research efforts on fully-integrated full-duplex RF transceivers, but mm-wave fully-integrated full-duplex systems, are still in their infancy. This dissertation presents novel architectures, antenna and circuit techniques to merge two exciting technologies, mm-wave and full-duplex, which can potentially offer the dual benefits of wide bandwidths and improved spectral efficiency. To this end, two different antenna interfaces, namely a wideband reconfigurable T/R antenna pair with polarization-based antenna cancellation and an mm-wave fully-integrated magnetic-free non-reciprocal circulator, are presented. The polarization-based antenna cancellation is employed in conjunction with the RF and digital cancellation to design a 60GHz full-duplex 45nm SOI CMOS transceiver with nearly 80dB self-interference suppression. The concepts and prototypes presented in this dissertation have also profound implications for emerging applications such as vehicular radars, 5G small-cell base-stations and virtual reality.Englishhttps://doi.org/10.7916/D8MP6KG3
collection NDLTD
language English
sources NDLTD
topic Electrical engineering
Wireless communication systems
Millimeter wave communication systems
Antennas (Electronics)
Electric circuits
spellingShingle Electrical engineering
Wireless communication systems
Millimeter wave communication systems
Antennas (Electronics)
Electric circuits
Dinc, Tolga
Architectures, Antennas and Circuits for Millimeter-wave Wireless Full-Duplex Applications
description Demand for wireless network capacity keeps growing exponentially every year, as a result a 1000-fold increase in data traffic is projected over the next 10 years in the context of 5G wireless networks. Solutions for delivering the 1000-fold increase in capacity fall into three main categories: deploying smaller cells, allocating more spectrum and improving spectral efficiency of wireless systems. Smaller cells at RF frequencies (1-6GHz) are unlikely to deliver the demanded capacity increase. On the other hand, millimeter-wave spectrum (frequencies over 24GHz) offers wider, multi-GHz channel bandwidths, and therefore has gained significant research interest as one of the most promising solutions to address the data traffic demands of 5G. Another disruptive technology is full-duplex which breaks a century-old assumption in wireless communication, by simultaneous transmission and reception on the same frequency channel. In doing so, full-duplex offers many benefits for wireless networks, including an immediate spectral efficiency improvement in the physical layer. Although FD promises great benefits, self-interference from the transmitter to its own receiver poses a fundamental challenge. The self-interference can be more than a billion times stronger than the desired signal and must be suppressed below the receiver noise floor. In recent years, there has been some research efforts on fully-integrated full-duplex RF transceivers, but mm-wave fully-integrated full-duplex systems, are still in their infancy. This dissertation presents novel architectures, antenna and circuit techniques to merge two exciting technologies, mm-wave and full-duplex, which can potentially offer the dual benefits of wide bandwidths and improved spectral efficiency. To this end, two different antenna interfaces, namely a wideband reconfigurable T/R antenna pair with polarization-based antenna cancellation and an mm-wave fully-integrated magnetic-free non-reciprocal circulator, are presented. The polarization-based antenna cancellation is employed in conjunction with the RF and digital cancellation to design a 60GHz full-duplex 45nm SOI CMOS transceiver with nearly 80dB self-interference suppression. The concepts and prototypes presented in this dissertation have also profound implications for emerging applications such as vehicular radars, 5G small-cell base-stations and virtual reality.
author Dinc, Tolga
author_facet Dinc, Tolga
author_sort Dinc, Tolga
title Architectures, Antennas and Circuits for Millimeter-wave Wireless Full-Duplex Applications
title_short Architectures, Antennas and Circuits for Millimeter-wave Wireless Full-Duplex Applications
title_full Architectures, Antennas and Circuits for Millimeter-wave Wireless Full-Duplex Applications
title_fullStr Architectures, Antennas and Circuits for Millimeter-wave Wireless Full-Duplex Applications
title_full_unstemmed Architectures, Antennas and Circuits for Millimeter-wave Wireless Full-Duplex Applications
title_sort architectures, antennas and circuits for millimeter-wave wireless full-duplex applications
publishDate 2018
url https://doi.org/10.7916/D8MP6KG3
work_keys_str_mv AT dinctolga architecturesantennasandcircuitsformillimeterwavewirelessfullduplexapplications
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