Probing phase transition and anisotropy in magnetic insulator based heterostructures employing magnon spin currents

dc.contributor.guideAnil Kumar, P S
dc.coverage.spatial
dc.creator.researcherMallick, Kingshuk
dc.date.accessioned2022-12-24T04:56:45Z
dc.date.available2022-12-24T04:56:45Z
dc.date.awarded2019
dc.date.completed2019
dc.date.registered
dc.description.abstractThermoelectric phenomena like the Seebeck and Peltier effects are known for more than two centuries with a wide range of applications. In 2008 Uchida et al. first demonstrated the phenomena called Spin Seebeck Effect (SSE) in which spin currents are generated in a ferromagnetic (FM) material in the presence of a magnetic field with an applied temperature gradient. These spin currents were electrically detected in an adjoining heavy metal layer (usually Pt) employing the Inverse Spin Hall effect (ISHE). The absence of charge currents in insulators meant reduced losses due to joule heating and hence the interest in ferromagnetic insulator (FMI) based spintronic devices wherein spin information gets transferred by pure magnon spin waves. In 2012 another unusual magnetoresistance effect called the Spin Hall Magnetoresistance (SMR), was discovered in similar Pt/FMI bilayers in which the resistance of the Pt layer could be modulated by the magnetization orientation of the FMI layer underneath. Subsequently, both SSE and SMR have been explored in a wide range of magnetic materials with exotic magnetic structures both for its rich physics and potential application as thermoelectric materials. In this regard, we have investigated these phenomena in different spintronic materials across their magnetic phase transition. We start with a description of the various experimental arrangements developed in-house to perform steady-state measurement of longitudinal SSE and SMR in a broad range of magnetic fields and temperatures. Next, we outline the fundamental characteristics of both phenomena revealed by our investigations on YIG single crystals in bulk and thin film form. Following the optimization of measurement conditions on YIG, we probe the competing interactions at low temperature in MgFe2O4 (MFO), which forms part of another popular class of insulating magnetic material, ferrites. Enhanced SSE was observed in Pt/MFO bilayers, hosting both Ferromagnetic and Antiferromagnetic (AFM) interactions. A simple model that consi...
dc.description.note
dc.format.accompanyingmaterialNone
dc.format.dimensions
dc.format.extent
dc.identifier.urihttp://hdl.handle.net/10603/430654
dc.languageEnglish
dc.publisher.institutionPhysics
dc.publisher.placeBangalore
dc.publisher.universityIndian Institute of Science Bangalore
dc.relation
dc.rightsuniversity
dc.source.universityUniversity
dc.subject.keywordPhysical Sciences
dc.subject.keywordPhysics
dc.subject.keywordPhysics Applied
dc.titleProbing phase transition and anisotropy in magnetic insulator based heterostructures employing magnon spin currents
dc.title.alternative
dc.type.degreePh.D.

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