Patterning Magnonic Structures via Laser Induced Crystallization of Yittrium Iron Garnet

Author:

Giacco Andrea Del1,Maspero Federico1,Levati Valerio1,Vitali Matteo1,Albisetti Edoardo1,Petti Daniela1,Brambilla Luigi2,Polewczyk Vincent3,Vinai Giovanni3,Panaccione Giancarlo3,Silvani Raffaele4,Madami Marco4,Tacchi Silvia5,Dreyer Rouven6,Lake Stephanie R.6,Woltersdorf Georg6,Schmidt Georg67,Bertacco Riccardo1ORCID

Affiliation:

1. Dipartimento di Fisica Politecnico di Milano Via G. Colombo 81 Milano 20133 Italia

2. Dipartimento di Chimica Materiali e Ingegneria Chimica Giulio Natta Politecnico di Milano P.za L. da Vinci 32 Milano 20133 Italia

3. Istituto Officina dei Materiali del CNR (CNR‐IOM) SS. 14, km 163,5 Trieste 34149 Italy

4. Dipartimento di Fisica e Geologia Università di Perugia Via A. Pascoli Perugia 06123 Italy

5. Istituto Officina dei Materiali del CNR (CNR‐IOM) Unità di Perugia Via A. Pascoli Perugia 06123 Italy

6. Martin Luther University Halle‐Wittenberg Institute of Physics Von‐Danckelmann‐Platz 3 06120 Halle Germany

7. Martin Luther University Halle‐Wittenberg Interdisziplinäres Zentrum für Materialwissenschaften Heinrich‐Damerow Straße 4 06120 Halle Germany

Abstract

AbstractThe fabrication and integration of high‐quality structures of Yttrium Iron Garnet (YIG) is critical for magnonics. Films with excellent properties are obtained only on single crystal Gadolinium Gallium Garnet (GGG) substrates using high‐temperature processes. The subsequent realization of magnonic structures via lithography and etching is not straightforward as it requires a tight control of the edge roughness, to avoid magnon scattering, and planarization in case of multilayer devices. In this work a different approach is described based on local laser annealing of amorphous YIG films, avoiding the need for subjecting the entire sample to high thermal budgets and for physical etching. Starting from amorphous and paramagnetic YIG films grown by pulsed laser deposition at room temperature on GGG, a 405 nm laser is used for patterning arbitrary shaped ferrimagnetic structures by local crystallization. In thick films (160 nm) the laser induced surface corrugation prevents the propagation of spin‐wave modes in patterned conduits. For thinner films (80 nm) coherent propagation is observed in 1.2 µm wide conduits displaying an attenuation length of 5 µm that is compatible with a damping coefficient of ≈5 × 10−3. Possible routes to achieve damping coefficients compatible with state‐of‐the art epitaxial YIG films are discussed.

Funder

HORIZON EUROPE European Research Council

H2020 European Research Council

Publisher

Wiley

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