Terahertz waveguides for 6G communication

As the world continues to advance technologically at a rapid rate, the need for high speed data is increasing exponentially. 5G networks are being phased into our lives and possess numerous novel applications in a wide variety of industries. However, it will not be able to keep up with the rate of t...

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Main Author: Mikhail Maneck Shah
Other Authors: Ranjan Singh
Format: Final Year Project (FYP)
Language:English
Published: Nanyang Technological University 2022
Subjects:
Online Access:https://hdl.handle.net/10356/156817
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author Mikhail Maneck Shah
author2 Ranjan Singh
author_facet Ranjan Singh
Mikhail Maneck Shah
author_sort Mikhail Maneck Shah
collection NTU
description As the world continues to advance technologically at a rapid rate, the need for high speed data is increasing exponentially. 5G networks are being phased into our lives and possess numerous novel applications in a wide variety of industries. However, it will not be able to keep up with the rate of technological advancements for long with its limitations of spectral bandwidth. This is where 6G networks would come in to provide a long term solution. 6G communication intends to utilise terahertz (THz) frequencies due to its large spectral bandwidth to facilitate data rates of multiple terabits per second. Early research into THz frequencies find that there are great losses present. However, to ease transmission of data and overcome the free space loss issue, a low-loss, high antenna gain and extremely efficient devices are required. Integrated Photonic Crystal (PC) circuits have shown great promise in being able to limit losses while maximising gain while Photonic Topological Insulators (PTIs) has shown to be robust and capable of providing a highly efficient platform. In addition to that, buffer technology has shown potential to be coupled with PTIs in order to combat the issue of impedance mismatch during its transition to air. Using the properties of topology on an industry-ready Complementary Metal Oxide Semiconductor (CMOS) silicon (Si) platform, a highly robust, low-loss and high-gain topological antenna-waveguide integrated platform is developed. Our results reveal robust transport of THz waves in topological waveguide even at the presence of sharp bends. And the integration of topological antenna with waveguide yields high gain. Using 3D simulation, the performance of the integrated system is verified. Furthermore, to minimize the impedance mismatch in topological antenna, the implementation of buffer solution that potentially would enhance the antenna performance is discussed. This study could pave the path for developing high-speed on chip THz integrated circuitry for next generation 6G communication.
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spelling ntu-10356/1568172023-02-28T23:11:00Z Terahertz waveguides for 6G communication Mikhail Maneck Shah Ranjan Singh School of Physical and Mathematical Sciences Centre for Disruptive Photonic Technologies (CDPT) ranjans@ntu.edu.sg Science::Physics As the world continues to advance technologically at a rapid rate, the need for high speed data is increasing exponentially. 5G networks are being phased into our lives and possess numerous novel applications in a wide variety of industries. However, it will not be able to keep up with the rate of technological advancements for long with its limitations of spectral bandwidth. This is where 6G networks would come in to provide a long term solution. 6G communication intends to utilise terahertz (THz) frequencies due to its large spectral bandwidth to facilitate data rates of multiple terabits per second. Early research into THz frequencies find that there are great losses present. However, to ease transmission of data and overcome the free space loss issue, a low-loss, high antenna gain and extremely efficient devices are required. Integrated Photonic Crystal (PC) circuits have shown great promise in being able to limit losses while maximising gain while Photonic Topological Insulators (PTIs) has shown to be robust and capable of providing a highly efficient platform. In addition to that, buffer technology has shown potential to be coupled with PTIs in order to combat the issue of impedance mismatch during its transition to air. Using the properties of topology on an industry-ready Complementary Metal Oxide Semiconductor (CMOS) silicon (Si) platform, a highly robust, low-loss and high-gain topological antenna-waveguide integrated platform is developed. Our results reveal robust transport of THz waves in topological waveguide even at the presence of sharp bends. And the integration of topological antenna with waveguide yields high gain. Using 3D simulation, the performance of the integrated system is verified. Furthermore, to minimize the impedance mismatch in topological antenna, the implementation of buffer solution that potentially would enhance the antenna performance is discussed. This study could pave the path for developing high-speed on chip THz integrated circuitry for next generation 6G communication. Bachelor of Science in Applied Physics 2022-04-26T01:44:50Z 2022-04-26T01:44:50Z 2022 Final Year Project (FYP) Mikhail Maneck Shah (2022). Terahertz waveguides for 6G communication. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/156817 https://hdl.handle.net/10356/156817 en application/pdf Nanyang Technological University
spellingShingle Science::Physics
Mikhail Maneck Shah
Terahertz waveguides for 6G communication
title Terahertz waveguides for 6G communication
title_full Terahertz waveguides for 6G communication
title_fullStr Terahertz waveguides for 6G communication
title_full_unstemmed Terahertz waveguides for 6G communication
title_short Terahertz waveguides for 6G communication
title_sort terahertz waveguides for 6g communication
topic Science::Physics
url https://hdl.handle.net/10356/156817
work_keys_str_mv AT mikhailmaneckshah terahertzwaveguidesfor6gcommunication