{"id":{"repo_id":"denver","oai_identifier":"oai:digitalcommons.du.edu:etd-3363"},"canonical_url":"https://search.dev.ndltd.org/etd/denver/oai:digitalcommons.du.edu:etd-3363","repository":{"repo_id":"denver","name":"University of Denver","base_url":"https://digitalcommons.du.edu/do/oai/"},"display":{"title":"Thermal, Electrical, and Spin Transport: Encompassing Low-Damping Ferromagnets and Antiferromagnetic/Ferromagnetic Heterostructures","abstract":"<p>Continuing technological advancements bring forth escalating challenges in global energy consumption and subsequent power dissipation, posing significant economic and environmental concerns. In response to these difficulties, the fields of thermoelectrics, spintronics, and spincaloritronics emerge as contemporary solutions, each presenting unique advantages. Thermoelectric devices, based on the Seebeck effect, other a passive, carbon-free energy generating solution from waste heat. Although current thermoelectric technology encounters hurdles in achieving optimal efficiencies without intricate designs or complex materials engineering, recently research into low-damping metallic ferromagnetic thin films have provided a new method to enhance spin wave lifetimes, thus contributing to thermoelectric voltage improvements. As advancements in spintronics and spincaloritronics progress, alternative methods for achieving energy efficiency, leveraging the electron spin degree of freedom, have been realized. Novel thermoelectric devices, capitalizing on the spin Seebeck effect, present simpler designs compared to conventional charge-based thermoelectric counterparts. Simultaneously, spintronic devices hold promise for faster data processing while promising more energy-efficient electronics by reducing the overall power consumption. Given these advancements, our understanding of the fundamental physics at the nanoscale becomes imperative to optimize these innovations as these technologies proliferate. In the absence of standardized methods for transport measurements in these fields, the evolution of measurement technique and device physics gains paramount importance for sustained progress. This dissertation primarily employs two devices: thermal isolation platform devices employed for measuring thermal conductivity, electrical resistivity, and thermopower of thin films, and the Hall bar design for exploring spin-related phenomena such as the spin Seebeck effect and spin Hall magnetoresistance. These devices pave the way for new explorations in the realms of thermoelectrics, spintronics, and spincaloritronics.</p>","abstract_html":"&lt;p&gt;Continuing technological advancements bring forth escalating challenges in global energy consumption and subsequent power dissipation, posing significant economic and environmental concerns. In response to these difficulties, the fields of thermoelectrics, spintronics, and spincaloritronics emerge as contemporary solutions, each presenting unique advantages. Thermoelectric devices, based on the Seebeck effect, other a passive, carbon-free energy generating solution from waste heat. Although current thermoelectric technology encounters hurdles in achieving optimal efficiencies without intricate designs or complex materials engineering, recently research into low-damping metallic ferromagnetic thin films have provided a new method to enhance spin wave lifetimes, thus contributing to thermoelectric voltage improvements. As advancements in spintronics and spincaloritronics progress, alternative methods for achieving energy efficiency, leveraging the electron spin degree of freedom, have been realized. Novel thermoelectric devices, capitalizing on the spin Seebeck effect, present simpler designs compared to conventional charge-based thermoelectric counterparts. Simultaneously, spintronic devices hold promise for faster data processing while promising more energy-efficient electronics by reducing the overall power consumption. Given these advancements, our understanding of the fundamental physics at the nanoscale becomes imperative to optimize these innovations as these technologies proliferate. In the absence of standardized methods for transport measurements in these fields, the evolution of measurement technique and device physics gains paramount importance for sustained progress. This dissertation primarily employs two devices: thermal isolation platform devices employed for measuring thermal conductivity, electrical resistivity, and thermopower of thin films, and the Hall bar design for exploring spin-related phenomena such as the spin Seebeck effect and spin Hall magnetoresistance. These devices pave the way for new explorations in the realms of thermoelectrics, spintronics, and spincaloritronics.&lt;/p&gt;","abstract_has_math":false,"creators":["Natale, Matthew Ryan"],"institution":null,"degree_name":"Ph.D.","degree_level":"Dissertation","degree_discipline":null,"degree_department":null,"school":null,"contributors":["Barry L. Zink","Xin Fan","Mark E. Siemens","Sandra S. Eaton"],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2024,"date_issued":"2024-03-01T08:00:00Z","date_published":"2024-03-01T08:00:00Z","updated_at":"2026-07-24T02:01:48Z","subjects":["Spin Hall magnetoresistance","Spin Seebeck effect","Spincaloritronics","Spintronics","Thermal conductivity","Thermoelectrics","Condensed Matter Physics","Materials Science and Engineering","Other Physics","Physical Sciences and Mathematics","Physics","Semiconductor and Optical Materials","Thermodynamics"],"languages":["English (eng)"],"rights":["<p>Copyright is held by the author. User is responsible for all copyright compliance.</p>"],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://digitalcommons.du.edu/etd/2378","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["Barry L. Zink","Xin Fan","Mark E. Siemens","Sandra S. Eaton"]},{"key":"dc:creator","label":"Author","values":["Natale, Matthew Ryan"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"thesis:degree_level","label":"Degree Level","values":["Dissertation"]},{"key":"thesis:degree_name","label":"Degree Name","values":["Ph.D."]}]},{"id":"subjects_keywords","label":"Subjects and Keywords","entries":[{"key":"dc:subject","label":"Dc Subject","values":["Spin Hall magnetoresistance","Spin Seebeck effect","Spincaloritronics","Spintronics","Thermal conductivity","Thermoelectrics","Condensed Matter Physics","Materials Science and Engineering","Other Physics","Physical Sciences and Mathematics","Physics","Semiconductor and Optical Materials","Thermodynamics"]}]},{"id":"language_rights","label":"Language and Rights","entries":[{"key":"dc:language","label":"Dc Language","values":["English (eng)"]},{"key":"dc:rights","label":"Dc Rights","values":["<p>Copyright is held by the author. User is responsible for all copyright compliance.</p>"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["https://digitalcommons.du.edu/etd/2378"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["<p>Continuing technological advancements bring forth escalating challenges in global energy consumption and subsequent power dissipation, posing significant economic and environmental concerns. In response to these difficulties, the fields of thermoelectrics, spintronics, and spincaloritronics emerge as contemporary solutions, each presenting unique advantages. Thermoelectric devices, based on the Seebeck effect, other a passive, carbon-free energy generating solution from waste heat. Although current thermoelectric technology encounters hurdles in achieving optimal efficiencies without intricate designs or complex materials engineering, recently research into low-damping metallic ferromagnetic thin films have provided a new method to enhance spin wave lifetimes, thus contributing to thermoelectric voltage improvements. As advancements in spintronics and spincaloritronics progress, alternative methods for achieving energy efficiency, leveraging the electron spin degree of freedom, have been realized. Novel thermoelectric devices, capitalizing on the spin Seebeck effect, present simpler designs compared to conventional charge-based thermoelectric counterparts. Simultaneously, spintronic devices hold promise for faster data processing while promising more energy-efficient electronics by reducing the overall power consumption. Given these advancements, our understanding of the fundamental physics at the nanoscale becomes imperative to optimize these innovations as these technologies proliferate. In the absence of standardized methods for transport measurements in these fields, the evolution of measurement technique and device physics gains paramount importance for sustained progress. This dissertation primarily employs two devices: thermal isolation platform devices employed for measuring thermal conductivity, electrical resistivity, and thermopower of thin films, and the Hall bar design for exploring spin-related phenomena such as the spin Seebeck effect and spin Hall magnetoresistance. These devices pave the way for new explorations in the realms of thermoelectrics, spintronics, and spincaloritronics.</p>"]},{"key":"dc:format","label":"Dc Format","values":["application/pdf"]},{"key":"dc:title","label":"Title","values":["Thermal, Electrical, and Spin Transport: Encompassing Low-Damping Ferromagnets and Antiferromagnetic/Ferromagnetic Heterostructures"]}]}],"canonical_facts":{"dc:contributor":["Barry L. Zink","Xin Fan","Mark E. Siemens","Sandra S. Eaton"],"dc:creator":["Natale, Matthew Ryan"],"dc:description.abstract":["<p>Continuing technological advancements bring forth escalating challenges in global energy consumption and subsequent power dissipation, posing significant economic and environmental concerns. In response to these difficulties, the fields of thermoelectrics, spintronics, and spincaloritronics emerge as contemporary solutions, each presenting unique advantages. Thermoelectric devices, based on the Seebeck effect, other a passive, carbon-free energy generating solution from waste heat. Although current thermoelectric technology encounters hurdles in achieving optimal efficiencies without intricate designs or complex materials engineering, recently research into low-damping metallic ferromagnetic thin films have provided a new method to enhance spin wave lifetimes, thus contributing to thermoelectric voltage improvements. As advancements in spintronics and spincaloritronics progress, alternative methods for achieving energy efficiency, leveraging the electron spin degree of freedom, have been realized. Novel thermoelectric devices, capitalizing on the spin Seebeck effect, present simpler designs compared to conventional charge-based thermoelectric counterparts. Simultaneously, spintronic devices hold promise for faster data processing while promising more energy-efficient electronics by reducing the overall power consumption. Given these advancements, our understanding of the fundamental physics at the nanoscale becomes imperative to optimize these innovations as these technologies proliferate. In the absence of standardized methods for transport measurements in these fields, the evolution of measurement technique and device physics gains paramount importance for sustained progress. This dissertation primarily employs two devices: thermal isolation platform devices employed for measuring thermal conductivity, electrical resistivity, and thermopower of thin films, and the Hall bar design for exploring spin-related phenomena such as the spin Seebeck effect and spin Hall magnetoresistance. These devices pave the way for new explorations in the realms of thermoelectrics, spintronics, and spincaloritronics.</p>"],"dc:format":["application/pdf"],"dc:identifier":["https://digitalcommons.du.edu/etd/2378"],"dc:language":["English (eng)"],"dc:rights":["<p>Copyright is held by the author. User is responsible for all copyright compliance.</p>"],"dc:subject":["Spin Hall magnetoresistance","Spin Seebeck effect","Spincaloritronics","Spintronics","Thermal conductivity","Thermoelectrics","Condensed Matter Physics","Materials Science and Engineering","Other Physics","Physical Sciences and Mathematics","Physics","Semiconductor and Optical Materials","Thermodynamics"],"dc:title":["Thermal, Electrical, and Spin Transport: Encompassing Low-Damping Ferromagnets and Antiferromagnetic/Ferromagnetic Heterostructures"],"thesis:degree_level":["Dissertation"],"thesis:degree_name":["Ph.D."]},"updated_at":"2026-07-24T02:01:48Z"}