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        <identifier>oai:www.ideals.illinois.edu:2142/129895</identifier>
        <datestamp>2025-10-25</datestamp>
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        <thesis xmlns="http://www.ndltd.org/standards/metadata/etdms/1.1/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns:dc="http://purl.org/dc/elements/1.1/" xsi:schemaLocation="http://www.ndltd.org/standards/metadata/etdms/1.1/ http://www.ndltd.org/standards/metadata/etdms/1.1/etdms11.xsd http://purl.org/dc/elements/1.1/ http://www.ndltd.org/standards/metadata/etdms/1.1/etdmsdc.xsd">
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          <dc:description>Submission original under an indefinite embargo labeled 'Open Access'. The submission was exported from vireo on 2025-10-20 without embargo terms</dc:description>
          <dc:description>The student, Robin Klause, accepted the attached license on 2025-05-08 at 09:00.</dc:description>
          <dc:description>The student, Robin Klause, submitted this Dissertation for approval on 2025-05-08 at 09:14.</dc:description>
          <dc:description>This Dissertation was approved for publication on 2025-05-19 at 13:28.</dc:description>
          <dc:description>DSpace SAF Submission Ingestion Package generated from Vireo submission #22128 on 2025-10-20 at 20:14:40</dc:description>
          <dc:title>Spin-torque-driven magnetization dynamics for neuromorphic functionality</dc:title>
          <dc:creator>Klause, Robin</dc:creator>
          <dc:date>2025-05-19</dc:date>
          <dc:contributor>Hoffmann, Axel F.</dc:contributor>
          <dc:contributor>Hoffmann, Axel F</dc:contributor>
          <dc:contributor>Cahill, David G</dc:contributor>
          <dc:contributor>Zuo, Jian-Min</dc:contributor>
          <dc:contributor>Rakheja, Shaloo</dc:contributor>
          <dc:subject>Spintronics</dc:subject>
          <dc:subject>Magnetic This Films</dc:subject>
          <dc:subject>Spin-orbit Torques</dc:subject>
          <dc:subject>Magnetization Dynamics</dc:subject>
          <dc:language>eng</dc:language>
          <dc:description>With the ever-increasing demand for computationally demanding tasks and large scale memory, new information processing and storage technology is needed. Spintronics plays a key role in the development of faster, smaller, and more energy efficient technology. In this work, the focus lies on the electrical control of magnetization dynamics through spin-orbit torques and the exploration of their potential for enabling neuromorphic functionality. More specifically, unconventional spin-orbit torques and the coupling of spin-Hall nano-oscillators are explored. First, unconventional spin-orbit torque generation in the non-collinear antiferromagnet and altermagnet Mn$_3$Pt is explored. The thin film growth process is optimized based on the structural characterization, and the electrical transport properties. Spin-torque ferromagnetic-resonance reveals that unconventional spin-orbit torques, resulting from a spin polarization component along the current direction, are generated when current is applied along specific directions with respect to the crystal and magnetic order. Second, unconventional spin-orbit torque generation in CrPt$_3$ is studied. Spin-torque ferromagnetic-resonance and second harmonic Hall measurements of CrPt$_3$/Cu/Ni$_{81}$Fe$_{19}$ heterostructures reveal that unconventional field-like spin-orbit torques are generated in both ferrimagnetic and paramagnetic CrPt$_3$ films indicating that the magnetic ordering does not play a role in generating unconventional torques. Instead, numerical calculations reveal that the unconventional torques stem from indirect non-local spin-orbit torques and symmetry breaking at the CrPt$_3$/Cu interface. Third, micromagnetic simulations show that unconventional spin-orbit torques can be used to generate magnetic droplet solitons in a ferromagnet with perpendicular magnetic anisotropy without applying an in-plane magnetic field. Due to the non-local injection of spin-orbit torques, which differs from the typical spin-valve geometry, multiple magnetic droplets can be generated and annihilated using specific current pulses. Last, Pt/Ni$_{81}$Fe$_{19}$ spin-Hall nano-oscillators are fabricated on Si substrate. Injection-locking of the oscillations to an {\em rf} signal reveal that direct electrical coupling of two oscillators is unfeasible due to the low power generation of a spin-Hall nano-oscillator. However, the frequency behavior of two connected oscillators can be tuned using two voltage sources. In addition, a fabrication process for Pt/Ni$_{81}$Fe$_{19}$ oscillators on top of an Y$_3$Fe$_5$O$_{12}$ film that were grown on Gd$_3$Ga$_5$O$_{12}$ is developed. This is non-trivial as several challenges need to be overcome that are due to the electrically insulating and poor thermally conducting film and substrate.</dc:description>
          <dc:date>2025-08</dc:date>
          <dc:type>Text</dc:type>
          <dc:identifier>https://hdl.handle.net/2142/129895</dc:identifier>
          <dc:rights>Copyright 2025 Robin Klause</dc:rights>
          <degree>
            <department>Materials Science &amp; Engineerng</department>
            <discipline>Materials Science &amp; Engr</discipline>
            <grantor>University of Illinois Urbana-Champaign</grantor>
            <name>Ph.D.</name>
            <level>Dissertation</level>
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