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Origin of exchange bias in [Co/Pt]ML/Fe multilayer with orthogonal magnetic anisotropies

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arxiv 2207.07376 v2 pith:FBHXHNVG submitted 2022-07-15 cond-mat.mtrl-sci

classification cond-mat.mtrl-sci
keywords interfacemagneticexchangelayerbiascouplingeffectorigin
verification ladder T0 review T1 audit T2 compute T3 formal
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Magnetization reversal of soft ferromagnetic Fe layer, coupled to [Co/Pt]ML multilayer [ML] with perpendicular magnetic anisotropy (PMA), has been studied in-situ with an aim to understand the origin of exchange bias (EB) in orthogonal magnetic anisotropic systems. The interface remanant state of the ML is modified by magnetic field annealing, and the effect of the same on the soft Fe layer is monitored using the in-situ magneto-optical Kerr effect (MOKE). A considerable shift in the Fe layer hysteresis loop from the centre and an unusual increase in the coercivity, similar to exchange bias phenomena, is attributed to the exchange coupling at the [Co/Pt]ML and Fe interface. The effect of the coupling on spin orientation at the interface is further explored precisely by performing an isotope selective grazing incident nuclear resonance scattering (GINRS) technique. Here, the interface selectivity is achieved by introducing a 2 nm thick Fe57 marker between [Co/Pt]ML and Fe layers. Interface sensitivity is further enhanced by performing measurements under the x-ray standing wave conditions. The combined MOKE and GINRS analysis revealed the unidirectional pinning of the Fe layer due to the net in-plane magnetic spin at the interface caused by magnetic field annealing. Unidirectional exchange coupling or pinning at the interface, which may be due to the formation of asymmetrical closure domains, is found responsible for the origin of EB with an unusual increase in coercivity.

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  1. Depth-resolved Nuclear Resonance Scattering under X-ray standing wave -an approach to study interface magnetism

    cond-mat.mtrl-sci 2024-12 reject novelty 4.0 of 10

    Simulations show that x-ray standing waves from a multilayer mirror can selectively excite 57Fe tracer layers at the two interfaces of a Tb/Fe/Tb trilayer, allowing interface-resolved nuclear resonance scattering.

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