Abstract

We report on comparative study of magnetic properties of Pt/Co/Pt trilayers after irradiation with different light sources. Ultrathin Pt/Co/Pt films were deposited by molecular beam epitaxy technique on sapphire (0001) substrates. Pt buffers were grown at room temperature (RT) and at 750°C (high temperature, HT). The samples were irradiated with a broad range of light energy densities (up to film ablation) using two different single pulse irradiation sources: (i) 40 fs laser with 800 nm wavelength and (ii) 3 ns laser-plasma source of extreme ultraviolet (EUV) with the most intense emission centered at 11 nm. The light pulse-driven irreversible structural and as a consequence, magnetic modifications were investigated using polar magneto-optical Kerr effect-based microscopy and atomic and magnetic force microscopies. The light pulse-induced transitions from the out-of-plane to in-plane magnetization state, and from in-plane to out-of-plane, were observed for both types of samples and irradiation methods. Diagrams of the magnetic states as a function of the Co layer thickness and energy density of the absorbed femtosecond pulses were constructed for the samples with both the RT and HT buffers. The energy density range responsible for the creation of the out-of-plane magnetization was wider for the HT than for RT buffer. This is correlated with the higher (for HT) crystalline quality and much smoother Pt/Co surface deduced from the X-ray diffraction studies. Submicrometer magnetic domains were observed in the irradiated region while approaching the out-of-plane magnetization state. Changes of Pt/Co/Pt structures are discussed for both types of light pulses.

Highlights

  • INTRODUCTIONNeed for a fabrication of miniaturized devices at micro- and nanoscales

  • Ultrathin magnetic films attract attention due to interesting physical properties, as well as applications in numerous magnetic devices

  • The structural ex-situ characterization was done by the X-ray diffraction (XRD) methods (Philips XPert MPD Pro Alpha[1], Cu Kα1 radiation of λ = 1.5406Å)

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Summary

INTRODUCTION

Need for a fabrication of miniaturized devices at micro- and nanoscales. A different wavelength means a different absorption profile, which has influence on irradiation process. In this work we present comparative studies of irradiation-created magnetic phases in Pt/Co/Pt layers of different structure, depending on the growth temperature of the Pt buffer. We compare the effect of two different techniques of electromagnetic wave irradiation: femtosecond infrared and nanosecond extreme ultraviolet pulses

EXPERIMENTAL
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