{"id":{"repo_id":"duke","oai_identifier":"oai:dukespace.lib.duke.edu:10161/9912"},"canonical_url":"https://search.dev.ndltd.org/etd/duke/oai:dukespace.lib.duke.edu:10161/9912","repository":{"repo_id":"duke","name":"Duke University","base_url":"https://dukespace.lib.duke.edu/server/oai/request"},"display":{"title":"Design of Functional Active RF Metamaterials with Embedded Transistor-Based Circuits and Devices","abstract":"<p>Recent advances in electromagnetics introduced tools that enable the creation of arti-</p><p>cial electromagnetic structures with exotic properties such as negative material pa-</p><p>rameters. The ability to express these parameters has experimentally demonstrated</p><p>using passive metamaterial structures. These structures, based on their passivity and</p><p>resonant properties, are typically associated with high loss and signicant bandwidth</p><p>limitations.</p><p>Enhancing and further exploring novel electromagnetic properties can be done</p><p>through embedding active circuits in the constitutive unit cells. Active elements</p><p>are able to supplement the passive inclusions to mitigate and overcome loss and</p><p>bandwidth limitations. The inclusion of these circuits also signcantly expands the</p><p>design space for the development of functional metamaterials and their potential</p><p>applications.</p><p>Due to the relative diculty of designing active circuits compared with passive</p><p>circuits, using active circuits in the construction of metamaterials is still an under-</p><p>developed area of research. By combining the two elds of active circuit design and</p><p>metamaterial design, we aim ll the functional active metamaterial design space.</p><p>This document provides the basis for understanding the design and synthesis of</p><p>functional active metamaterials.</p><p>To provide necessary background matter, chapter 1 will function as an introduc-</p><p>tion chapter, discussing how active electromagnetic metamaterials are created and characterized. There are also several required design techniques necessary to suc-</p><p>cessfully engineer a functional active metamaterial. The introduction will emphasize</p><p>on linking metamaterial unit cell response with RF/analog circuit design with a brief</p><p>introduction to the semiconductor physics important to aid in the understanding of</p><p>the full active metamaterial design and fabrication process.</p><p>The subsequent chapters detail our specic contributions to the eld of func-</p><p>tional active RF metamaterials. Chapter 2 introduces and characterizes a meta-</p><p>material designed to have a tunable quality factor (tunable resonant bandwidth).</p><p>This metamaterial is essentially passive but demonstrates the transistor's versatility</p><p>as a combination of tunable elements, motivating the use of embedding transistors</p><p>in metamaterials. After establishing a simple application of a transistor in a pas-</p><p>sive metamaterial, chapter 3 outlines the design and characterization of an active</p><p>metamaterial exhibiting the properties of loss cancellation and gain. Chapter 4 in-</p><p>troduces another active metamaterial with the ability to self-adapt to an incident</p><p>signal. Within the self-adapting system, several complex RF circuit systems are</p><p>simulatenously developed and implemented such as a self-oscillating mixer and a</p><p>phase locked loop. Conclusions and additional suggested future research directions</p><p>are discussed in chapter 5.</p><p>There are also several appendices attached at the end of this document that are</p><p>meant to assist future graduate students and other readers. The additional topics</p><p>include the experimental verication of a passive magnetic metamaterial acting as a</p><p>near eld parasitic, the stabilization and measurement of a tunnel diode, a discussion</p><p>on the challenges of realizing active inductors from discrete components, and a basic</p><p>strategy for creating a non-volatile metamaterial. It is my aim for these appendices</p><p>to help provide additional inspiration for future studies within the eld.</p>","abstract_html":"&lt;p&gt;Recent advances in electromagnetics introduced tools that enable the creation of arti-&lt;/p&gt;&lt;p&gt;cial electromagnetic structures with exotic properties such as negative material pa-&lt;/p&gt;&lt;p&gt;rameters. The ability to express these parameters has experimentally demonstrated&lt;/p&gt;&lt;p&gt;using passive metamaterial structures. These structures, based on their passivity and&lt;/p&gt;&lt;p&gt;resonant properties, are typically associated with high loss and signicant bandwidth&lt;/p&gt;&lt;p&gt;limitations.&lt;/p&gt;&lt;p&gt;Enhancing and further exploring novel electromagnetic properties can be done&lt;/p&gt;&lt;p&gt;through embedding active circuits in the constitutive unit cells. Active elements&lt;/p&gt;&lt;p&gt;are able to supplement the passive inclusions to mitigate and overcome loss and&lt;/p&gt;&lt;p&gt;bandwidth limitations. The inclusion of these circuits also signcantly expands the&lt;/p&gt;&lt;p&gt;design space for the development of functional metamaterials and their potential&lt;/p&gt;&lt;p&gt;applications.&lt;/p&gt;&lt;p&gt;Due to the relative diculty of designing active circuits compared with passive&lt;/p&gt;&lt;p&gt;circuits, using active circuits in the construction of metamaterials is still an under-&lt;/p&gt;&lt;p&gt;developed area of research. By combining the two elds of active circuit design and&lt;/p&gt;&lt;p&gt;metamaterial design, we aim ll the functional active metamaterial design space.&lt;/p&gt;&lt;p&gt;This document provides the basis for understanding the design and synthesis of&lt;/p&gt;&lt;p&gt;functional active metamaterials.&lt;/p&gt;&lt;p&gt;To provide necessary background matter, chapter 1 will function as an introduc-&lt;/p&gt;&lt;p&gt;tion chapter, discussing how active electromagnetic metamaterials are created and characterized. There are also several required design techniques necessary to suc-&lt;/p&gt;&lt;p&gt;cessfully engineer a functional active metamaterial. The introduction will emphasize&lt;/p&gt;&lt;p&gt;on linking metamaterial unit cell response with RF/analog circuit design with a brief&lt;/p&gt;&lt;p&gt;introduction to the semiconductor physics important to aid in the understanding of&lt;/p&gt;&lt;p&gt;the full active metamaterial design and fabrication process.&lt;/p&gt;&lt;p&gt;The subsequent chapters detail our specic contributions to the eld of func-&lt;/p&gt;&lt;p&gt;tional active RF metamaterials. Chapter 2 introduces and characterizes a meta-&lt;/p&gt;&lt;p&gt;material designed to have a tunable quality factor (tunable resonant bandwidth).&lt;/p&gt;&lt;p&gt;This metamaterial is essentially passive but demonstrates the transistor&#x27;s versatility&lt;/p&gt;&lt;p&gt;as a combination of tunable elements, motivating the use of embedding transistors&lt;/p&gt;&lt;p&gt;in metamaterials. After establishing a simple application of a transistor in a pas-&lt;/p&gt;&lt;p&gt;sive metamaterial, chapter 3 outlines the design and characterization of an active&lt;/p&gt;&lt;p&gt;metamaterial exhibiting the properties of loss cancellation and gain. Chapter 4 in-&lt;/p&gt;&lt;p&gt;troduces another active metamaterial with the ability to self-adapt to an incident&lt;/p&gt;&lt;p&gt;signal. Within the self-adapting system, several complex RF circuit systems are&lt;/p&gt;&lt;p&gt;simulatenously developed and implemented such as a self-oscillating mixer and a&lt;/p&gt;&lt;p&gt;phase locked loop. Conclusions and additional suggested future research directions&lt;/p&gt;&lt;p&gt;are discussed in chapter 5.&lt;/p&gt;&lt;p&gt;There are also several appendices attached at the end of this document that are&lt;/p&gt;&lt;p&gt;meant to assist future graduate students and other readers. The additional topics&lt;/p&gt;&lt;p&gt;include the experimental verication of a passive magnetic metamaterial acting as a&lt;/p&gt;&lt;p&gt;near eld parasitic, the stabilization and measurement of a tunnel diode, a discussion&lt;/p&gt;&lt;p&gt;on the challenges of realizing active inductors from discrete components, and a basic&lt;/p&gt;&lt;p&gt;strategy for creating a non-volatile metamaterial. It is my aim for these appendices&lt;/p&gt;&lt;p&gt;to help provide additional inspiration for future studies within the eld.&lt;/p&gt;","abstract_has_math":false,"creators":["Barrett, John"],"institution":null,"degree_name":null,"degree_level":null,"degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":["Cummer, Steven"],"committee_chairs":[],"committee_members":[],"year":2015,"date_issued":"2015","date_published":"2015","updated_at":"2026-07-24T02:06:56Z","subjects":["Engineering","Active Circuits","Active Metamaterials","Transistor Circuits"],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://hdl.handle.net/10161/9912","outbound_label":"Handle","outbound_source":"dc:identifier.uri"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor.advisor","label":"Advisor","values":["Cummer, Steven"]},{"key":"dc:creator","label":"Author","values":["Barrett, John"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date.accessioned","label":"Dc Date Accessioned","values":["2015-05-12T20:45:44Z"]},{"key":"dc:date.available","label":"Dc Date Available","values":["2015-05-12T20:45:44Z"]},{"key":"dc:date.issued","label":"Date","values":["2015"]},{"key":"dc:type","label":"Dc Type","values":["Dissertation"]}]},{"id":"subjects_keywords","label":"Subjects and Keywords","entries":[{"key":"dc:subject","label":"Dc Subject","values":["Engineering","Active Circuits","Active Metamaterials","Transistor Circuits"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier.uri","label":"Identifier URI","values":["https://hdl.handle.net/10161/9912"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["<p>Recent advances in electromagnetics introduced tools that enable the creation of arti-</p><p>cial electromagnetic structures with exotic properties such as negative material pa-</p><p>rameters. The ability to express these parameters has experimentally demonstrated</p><p>using passive metamaterial structures. These structures, based on their passivity and</p><p>resonant properties, are typically associated with high loss and signicant bandwidth</p><p>limitations.</p><p>Enhancing and further exploring novel electromagnetic properties can be done</p><p>through embedding active circuits in the constitutive unit cells. Active elements</p><p>are able to supplement the passive inclusions to mitigate and overcome loss and</p><p>bandwidth limitations. The inclusion of these circuits also signcantly expands the</p><p>design space for the development of functional metamaterials and their potential</p><p>applications.</p><p>Due to the relative diculty of designing active circuits compared with passive</p><p>circuits, using active circuits in the construction of metamaterials is still an under-</p><p>developed area of research. By combining the two elds of active circuit design and</p><p>metamaterial design, we aim ll the functional active metamaterial design space.</p><p>This document provides the basis for understanding the design and synthesis of</p><p>functional active metamaterials.</p><p>To provide necessary background matter, chapter 1 will function as an introduc-</p><p>tion chapter, discussing how active electromagnetic metamaterials are created and characterized. There are also several required design techniques necessary to suc-</p><p>cessfully engineer a functional active metamaterial. The introduction will emphasize</p><p>on linking metamaterial unit cell response with RF/analog circuit design with a brief</p><p>introduction to the semiconductor physics important to aid in the understanding of</p><p>the full active metamaterial design and fabrication process.</p><p>The subsequent chapters detail our specic contributions to the eld of func-</p><p>tional active RF metamaterials. Chapter 2 introduces and characterizes a meta-</p><p>material designed to have a tunable quality factor (tunable resonant bandwidth).</p><p>This metamaterial is essentially passive but demonstrates the transistor's versatility</p><p>as a combination of tunable elements, motivating the use of embedding transistors</p><p>in metamaterials. After establishing a simple application of a transistor in a pas-</p><p>sive metamaterial, chapter 3 outlines the design and characterization of an active</p><p>metamaterial exhibiting the properties of loss cancellation and gain. Chapter 4 in-</p><p>troduces another active metamaterial with the ability to self-adapt to an incident</p><p>signal. Within the self-adapting system, several complex RF circuit systems are</p><p>simulatenously developed and implemented such as a self-oscillating mixer and a</p><p>phase locked loop. Conclusions and additional suggested future research directions</p><p>are discussed in chapter 5.</p><p>There are also several appendices attached at the end of this document that are</p><p>meant to assist future graduate students and other readers. The additional topics</p><p>include the experimental verication of a passive magnetic metamaterial acting as a</p><p>near eld parasitic, the stabilization and measurement of a tunnel diode, a discussion</p><p>on the challenges of realizing active inductors from discrete components, and a basic</p><p>strategy for creating a non-volatile metamaterial. It is my aim for these appendices</p><p>to help provide additional inspiration for future studies within the eld.</p>"]},{"key":"dc:title","label":"Title","values":["Design of Functional Active RF Metamaterials with Embedded Transistor-Based Circuits and Devices"]}]}],"canonical_facts":{"dc:contributor.advisor":["Cummer, Steven"],"dc:creator":["Barrett, John"],"dc:date.accessioned":["2015-05-12T20:45:44Z"],"dc:date.available":["2015-05-12T20:45:44Z"],"dc:date.issued":["2015"],"dc:description.abstract":["<p>Recent advances in electromagnetics introduced tools that enable the creation of arti-</p><p>cial electromagnetic structures with exotic properties such as negative material pa-</p><p>rameters. The ability to express these parameters has experimentally demonstrated</p><p>using passive metamaterial structures. These structures, based on their passivity and</p><p>resonant properties, are typically associated with high loss and signicant bandwidth</p><p>limitations.</p><p>Enhancing and further exploring novel electromagnetic properties can be done</p><p>through embedding active circuits in the constitutive unit cells. Active elements</p><p>are able to supplement the passive inclusions to mitigate and overcome loss and</p><p>bandwidth limitations. The inclusion of these circuits also signcantly expands the</p><p>design space for the development of functional metamaterials and their potential</p><p>applications.</p><p>Due to the relative diculty of designing active circuits compared with passive</p><p>circuits, using active circuits in the construction of metamaterials is still an under-</p><p>developed area of research. By combining the two elds of active circuit design and</p><p>metamaterial design, we aim ll the functional active metamaterial design space.</p><p>This document provides the basis for understanding the design and synthesis of</p><p>functional active metamaterials.</p><p>To provide necessary background matter, chapter 1 will function as an introduc-</p><p>tion chapter, discussing how active electromagnetic metamaterials are created and characterized. There are also several required design techniques necessary to suc-</p><p>cessfully engineer a functional active metamaterial. The introduction will emphasize</p><p>on linking metamaterial unit cell response with RF/analog circuit design with a brief</p><p>introduction to the semiconductor physics important to aid in the understanding of</p><p>the full active metamaterial design and fabrication process.</p><p>The subsequent chapters detail our specic contributions to the eld of func-</p><p>tional active RF metamaterials. Chapter 2 introduces and characterizes a meta-</p><p>material designed to have a tunable quality factor (tunable resonant bandwidth).</p><p>This metamaterial is essentially passive but demonstrates the transistor's versatility</p><p>as a combination of tunable elements, motivating the use of embedding transistors</p><p>in metamaterials. After establishing a simple application of a transistor in a pas-</p><p>sive metamaterial, chapter 3 outlines the design and characterization of an active</p><p>metamaterial exhibiting the properties of loss cancellation and gain. Chapter 4 in-</p><p>troduces another active metamaterial with the ability to self-adapt to an incident</p><p>signal. Within the self-adapting system, several complex RF circuit systems are</p><p>simulatenously developed and implemented such as a self-oscillating mixer and a</p><p>phase locked loop. Conclusions and additional suggested future research directions</p><p>are discussed in chapter 5.</p><p>There are also several appendices attached at the end of this document that are</p><p>meant to assist future graduate students and other readers. The additional topics</p><p>include the experimental verication of a passive magnetic metamaterial acting as a</p><p>near eld parasitic, the stabilization and measurement of a tunnel diode, a discussion</p><p>on the challenges of realizing active inductors from discrete components, and a basic</p><p>strategy for creating a non-volatile metamaterial. It is my aim for these appendices</p><p>to help provide additional inspiration for future studies within the eld.</p>"],"dc:identifier.uri":["https://hdl.handle.net/10161/9912"],"dc:subject":["Engineering","Active Circuits","Active Metamaterials","Transistor Circuits"],"dc:title":["Design of Functional Active RF Metamaterials with Embedded Transistor-Based Circuits and Devices"],"dc:type":["Dissertation"]},"updated_at":"2026-07-24T02:06:56Z"}