Magnetoelectrics and multiferroics: theory, synthesis, characterisation, preliminary results and perspectives for all-optical manipulations
Review article, 2023

Solid state compounds exhibiting multiple and coupled macroscopic orders, named multiferroics, represent a challenge for both theoretical and experimental modern condensed-matter physics. Spins and the electric polarisation in conventional magnetic and ferroelectric materials can be manipulated on their fundamental timescales, by means of femtosecond laser pulses. In view of the resounding success and popularity of the all-optical approach, it is only natural to wonder about the application of this scheme to study the intrinsic coupling between spins and charges in multiferroics. Deeply fundamental questions arise: can ultrashort laser pulses deterministically activate, enhance or suppress the magnetoelectric coupling on the femtosecond timescale? Can these processes be triggered in a fully coherent fashion, thus being unrestrained by any thermal load? Which mechanism of spin-charge coupling is most favourable to overcome these overarching and daunting challenges? This problem is interdisciplinary in nature, requiring contributions from materials science and condensed matter physics from both theoretical and experimental perspectives. High-quality materials suitable for optical investigations have to be identified, synthetized and characterised. General and valid models offer then a guide to the plethora of possible light-induced processes, resulting in the desired ultrafast multiferroic manipulations. Finally, healthy experimental schemes, able to unambiguously track the ultrafast dynamics of either the ferroelectric or the magnetic order parameter have to be developed and implemented. Our motivation to write this review is to lay a broad and multidisciplinary foundation, which may be employed as a starting point for non-equilibrium approaches to the manipulation of the multiferroicity on the femtosecond timescale. This was also one of the main goals of the COST Action MAGNETOFON, whose network constitutes the core of the authors of this review. The present work thus represents a part of the scientific legacy of MAGNETOFON itself.

ultrafast spin dynamics

x-ray spectroscopy

ultrafast charge dynamics

material synthesis and characterisation

multiferroics

modelling and theory

Author

D. Bossini

University of Konstanz

D. M. Juraschek

Tel Aviv University

Richard Matthias Geilhufe

Chalmers, Physics, Condensed Matter and Materials Theory

N. Nagaosa

RIKEN

University of Tokyo

A. V. Balatsky

University of Connecticut

Stockholm University

M. Milanović

University of Novi Sad

V. V. Srdić

University of Novi Sad

P. Šenjug

University of Zagreb

E. Topić

University of Zagreb

D. Barišić

University of Zagreb

M. Rubčić

University of Zagreb

D. Pajić

University of Zagreb

T. Arima

University of Tokyo

M. Savoini

Swiss Federal Institute of Technology in Zürich (ETH)

S. L. Johnson

Paul Scherrer Institut

Swiss Federal Institute of Technology in Zürich (ETH)

C. S. Davies

Radboud University

A. Kirilyuk

Radboud University

Journal of Physics D: Applied Physics

0022-3727 (ISSN) 13616463 (eISSN)

Vol. 56 27 273001

Interaction of chiral phonons and spin

Swedish Research Council (VR) (2022-03350), 2023-01-01 -- 2026-12-31.

Subject Categories

Atom and Molecular Physics and Optics

Condensed Matter Physics

DOI

10.1088/1361-6463/acc8e1

More information

Latest update

6/30/2023