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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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 |
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English |
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Electrical engineering Wireless communication systems Millimeter wave communication systems Antennas (Electronics) Electric circuits |
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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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1719046931686096896 |