The 2022 magneto-optics roadmap

Дорожная карта магнито-оптики 2022 года
Bilu Liu, Hailong Wang, Chunhui Du, А. К. Звездин, M. Schubert, A. V. Kimel, Markus Münzenberg, G. Carlotti, Daria O. Ignatyeva, V. I. Belotelov, Claire Donnelly, Antonio García‐Martín, Iwao Matsuda, Andreas Berger, P. Vavassori, M. Sacchi, Nicolò Maccaferri, Jeffrey McCord, N. de Sousa, S. Tacchi, Pietro Gambardella, Martin Schultze, N. P. Armitage, Mauro Fanciulli, S. Sharma, Vanya Darakchieva, Samuel Shallcross, Georgeta Salvan, Jaroslav Hamrle, Ondřej Stejskal, Gian Salis, Vasily V. Temnov, Igor V. Bychkov, Л. Н. Котов, Aurelio Hierro Rodríguez, Thierry Ruchon, Ziyang Huang, Baofu Ding
2022-08-30

Cotton–Mouton effect in two-dimensional materialsMO metasurfacesMOKE spectroscopyTHz MOKEgeneralized magneto-optical ellipsometrylight beams carrying orbital angular momentummagneto-optical Kerr effect (MOKE)magneto-opticsmagnetoplasmonicsnitrogen-vacancy centre magnetic sensingspin waves Brillouin light scatteringtime-resolved magneto-optical spectroscopyultrafast MOKEx-ray free electron lasers (XFEL) magneto-opticsx-ray magneto-optics
Abstract Magneto-optical (MO) effects, viz. magnetically induced changes in light intensity or polarization upon reflection from or transmission through a magnetic sample, were discovered over a century and a half ago. Initially they played a crucially relevant role in unveiling the fundamentals of electromagnetism and quantum mechanics. A more broad-based relevance and wide-spread use of MO methods, however, remained quite limited until the 1960s due to a lack of suitable, reliable and easy-to-operate light sources. The advent of Laser technology and the availability of other novel light sources led to an enormous expansion of MO measurement techniques and applications that continues to this day (see section 1). The here-assembled roadmap article is intended to provide a meaningful survey over many of the most relevant recent developments, advances, and emerging research directions in a rather condensed form, so that readers can easily access a significant overview about this very dynamic research field. While light source technology and other experimental developments were crucial in the establishment of today’s magneto-optics, progress also relies on an ever-increasing theoretical understanding of MO effects from a quantum mechanical perspective (see section 2), as well as using electromagnetic theory and modelling approaches (see section 3) to enable quantitatively reliable predictions for ever more complex materials, metamaterials, and device geometries. The latest advances in established MO methodologies and especially the utilization of the MO Kerr effect (MOKE) are presented in sections 4 (MOKE spectroscopy), 5 (higher order MOKE effects), 6 (MOKE microscopy), 8 (high sensitivity MOKE), 9 (generalized MO ellipsometry), and 20 (Cotton–Mouton effect in two-dimensional materials). In addition, MO effects are now being investigated and utilized in spectral ranges, to which they originally seemed completely foreign, as those of synchrotron radiation x-rays (see section 14 on three-dimensional magnetic characterization and section 16 on light beams carrying orbital angular momentum) and, very recently, the terahertz (THz) regime (see section 18 on THz MOKE and section 19 on THz ellipsometry for electron paramagnetic resonance detection). Magneto-optics also demonstrates its strength in a unique way when combined with femtosecond laser pulses (see section 10 on ultrafast MOKE and section 15 on magneto-optics using x-ray free electron lasers), facilitating the very active field of time-resolved MO spectroscopy that enables investigations of phenomena like spin relaxation of non-equilibrium photoexcited carriers, transient modifications of ferromagnetic order, and photo-induced dynamic phase transitions, to name a few. Recent progress in nanoscience and nanotechnology, which is intimately linked to the achieved impressive ability to reliably fabricate materials and functional structures at the nanoscale, now enables the exploitation of strongly enhanced MO effects induced by light–matter interaction at the nanoscale (see section 12 on magnetoplasmonics and section 13 on MO metasurfaces). MO effects are also at the very heart of powerful magnetic characterization techniques like Brillouin light scattering and time-resolved pump-probe measurements for the study of spin waves (see section 7), their interactions with acoustic waves (see section 11), and ultra-sensitive magnetic field sensing applications based on nitrogen-vacancy centres in diamond (see section 17). Despite our best attempt to represent the field of magneto-optics accurately and do justice to all its novel developments and its diversity, the research area is so extensive and active that there remains great latitude in deciding what to include in an article of this sort, which in turn means that some areas might not be adequately represented here. However, we feel that the 20 sections that form this 2022 magneto-optics roadmap article, each written by experts in the field and addressing a specific subject on only two pages, provide an accurate snapshot of where this research field stands today. Correspondingly, it should act as a valuable reference point and guideline for emerging research directions in modern magneto-optics, as well as illustrate the directions this research field might take in the foreseeable future.
1
Magneto-optical (MO) effects have expanded significantly since laser technology enabled diverse measurement techniques and applications beginning in the 1960s.
2
Nanoscience advances permit exploitation of strongly enhanced MO effects at the nanoscale, exemplified by magnetoplasmonics and MO metasurfaces, and support sensitive magnetic characterization methods like Brillouin light scattering and NV-center sensing.
3
Progress in MO relies on advances in quantum-mechanical theory and electromagnetic modelling to predict behavior in complex materials, metamaterials, and device geometries.
4
Recent developments extend MO investigations into new spectral ranges, including x-ray synchrotron radiation and terahertz (THz) regimes, enabling 3D magnetic characterization and THz MOKE/ellipsometry.
5
Time-resolved MO spectroscopy using femtosecond lasers and x-ray free electron lasers enables studies of spin relaxation, transient ferromagnetic order changes, and photo-induced dynamic phase transitions.

Magneto-optical effects and magneto-optical methods applied to magnetic materials, metamaterials, nanostructures, and devices

Recent developments, measurement techniques, theoretical understanding, applications, and emerging research directions in magneto-optics (including MOKE, MOKE spectroscopy/microscopy, ultrafast and THz MOKE, magnetoplasmonics, MO metasurfaces, MO ellipsometry, and related characterization methods)

Publication Details
Publication Date
2022-08-30
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Authors
Bilu Liu
Hailong Wang
Chunhui Du
А. К. Звездин
M. Schubert
A. V. Kimel
Markus Münzenberg
G. Carlotti
Daria O. Ignatyeva
V. I. Belotelov
Claire Donnelly
Antonio García‐Martín
Iwao Matsuda
Andreas Berger
P. Vavassori
M. Sacchi
Nicolò Maccaferri
Jeffrey McCord
N. de Sousa
S. Tacchi
Pietro Gambardella
Martin Schultze
N. P. Armitage
Mauro Fanciulli
S. Sharma
Vanya Darakchieva
Samuel Shallcross
Georgeta Salvan
Jaroslav Hamrle
Ondřej Stejskal
Gian Salis
Vasily V. Temnov
Igor V. Bychkov
Л. Н. Котов
Aurelio Hierro Rodríguez
Thierry Ruchon
Ziyang Huang
Baofu Ding
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