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Proximity-enhanced magnetocaloric effect in ferromagnetic trilayers
KTH, School of Engineering Sciences (SCI), Applied Physics, Nanostructure Physics.ORCID iD: 0000-0002-9310-6183
KTH, School of Engineering Sciences (SCI), Applied Physics, Nanostructure Physics. Institute of Physics, NASU, 03028 Kyiv, Ukraine.ORCID iD: 0000-0001-7568-656X
KTH, School of Engineering Sciences (SCI), Applied Physics, Nanostructure Physics. Institute of Magnetism, NASU, 03142 Kyiv, Ukraine.ORCID iD: 0000-0001-8754-3152
KTH, School of Engineering Sciences (SCI), Applied Physics, Nanostructure Physics.ORCID iD: 0000-0003-2339-1692
2022 (English)In: Journal of Physics: Condensed Matter, ISSN 0953-8984, E-ISSN 1361-648X, Vol. 35, no 7, p. 075801-075801Article in journal (Refereed) Published
Abstract [en]

The demagnetization and associated magnetocaloric effect (MCE) in strong-weak-strong ferromagnetic trilayers, upon a reorientation of the strong ferromagnets from parallel to antiparallel (AP) magnetization, is simulated using atomistic spin dynamics. The simulations yield non-trivial spin distributions in the AP state, which in turn allows entropy to be calculated directly. The influence of longer-range spin–spin interactions and of variable strength of the external switching field are investigated. Finally, we find that the MCE in the system can be significantly improved by allowing the local exchange to vary through the spacer, which in practice can be implemented by spatially tailoring the spacer's magnetic dilution.

Place, publisher, year, edition, pages
IOP Publishing , 2022. Vol. 35, no 7, p. 075801-075801
National Category
Condensed Matter Physics
Identifiers
URN: urn:nbn:se:kth:diva-322813DOI: 10.1088/1361-648x/ac9f95ISI: 000898312900001PubMedID: 36323000Scopus ID: 2-s2.0-85144366813OAI: oai:DiVA.org:kth-322813DiVA, id: diva2:1724181
Funder
Swedish Research Council, 2018-03526Olle Engkvists stiftelse, 2020-2022
Note

QC 20230404

Available from: 2023-01-05 Created: 2023-01-05 Last updated: 2023-04-04Bibliographically approved
In thesis
1. Spin Vortices, Interlayer Exchange, and Magnetocalorics in Multilayers
Open this publication in new window or tab >>Spin Vortices, Interlayer Exchange, and Magnetocalorics in Multilayers
2023 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

In this thesis we study strongly coupled pairs of spin vortices, in a configurationsuch that the cores attract while external fields act to pull them apart, with potential applications in magnetic random access memory (MRAM) and oscillators.Inertial decoupling of the cores has been studied and can be achieved with weak nanosecond pulses by the help of anharmonicity. Asymmetries and defects of the vortex pairs are studied in detail for characterization as well as utilization when introduced intentionally. A certain defect is found to lift a degeneracy between topologically protected states, with potential memory applications. Fine details in measurements and micromagnetic simulations reveal the beginning of an antivortex, as the shadow of the other vortex core. A vortex and an anti-vortex forms a bimeron, and a hysteresis is found with respect to its existence as a function of the core field strength.Interlayer exchange, as used in synthetic antiferromagnets and a range of spintronics applications, is studied in detail. Significant enhancement and tunability is found in systems of dilute ferromagentic films, by the introduction of monolayer-thinferromagnetic layers. The effects of interlayer exchange on thin antiferromagneticfilms are investigated. A strong effect is seen at thicknesses that optimize the films sensitivity due to finite size effects, and a multilayer system can be constructed with tunable exchange bias.Lastly we study the magnetocaloric effect (MCE), wherein demagnetization (ormagnetization) by the removal (application) of external fields causes a decrease(increase) in the temperature of the magnetic material. An inverse effect is studied in magnetic multilayers designed such that the application of a field causes ademagnetization in the active material. The proximity effects in these strong-weakstrong ferromagnetic trilayers result in an increased MCE compared to the directeffect of the field on the active MCE material (spacer). Atomistic spin dynamics areused to investigate the internal magnetization and significant enhancement is foundusing gradient spacers. Additionally, a membrane-based nanocalorimetry setup is constructed for direct measurements of the adiabatic temperature change, as a better measure of the MCE than the typically reported isothermal entropy change.The nonzero MCE at temperatures twice the intrinsic Curie temperature of the spacer, suggests the presence of a long-range exchange due to polarized conductionelectrons. With the long interaction range unfeasible in atomistic simulations, aphenomenological numerical model is developed to recreate the experimental results.

Place, publisher, year, edition, pages
Stockholm: KTH Royal Institute of Technology, 2023. p. 93
Series
TRITA-SCI-FOU ; 2023:01
Keywords
Spin vortex pairs, bimerons, RKKY, finite size effects, nanostructure magnetocalorics, atomistic spin dynamics, nanocalorimetry, Spinvirvelpar, bimeron, RKKY, finita storlekseffekter, magnetkalorimetri i nanostrukturer, atomistisk spindynamik, nanokalorimetri
National Category
Condensed Matter Physics
Research subject
Physics, Material and Nano Physics
Identifiers
urn:nbn:se:kth:diva-322815 (URN)978-91-8040-460-0 (ISBN)
Public defence
2023-01-27, 4204, Hus 3, Albanovägen 29, Albanova, KTH, Stockholm, 09:00 (English)
Opponent
Supervisors
Note

QC 230109

Available from: 2023-01-09 Created: 2023-01-05 Last updated: 2023-01-13Bibliographically approved

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Persson, MiltonKulyk, MykolaKravets, AnatoliiKorenivski, Vladislav

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