Terahertz spin dynamics in rare-earth orthoferrites

Терахерцовая динамика спина в ортоферритах редкоземельных элементов
Junichiro Kono, Xinwei Li, Dasom Kim, Yincheng Liu
2022-01-01

Dicke superradiant phase transitionTHz spectroscopy of spin excitationsacoustic magnonsantiferromagnetic spintronicscoherent THz magnonsdynamic magnetoelectric couplingelectromagnonsrare-earth orthoferritesterahertz spin dynamicsultrafast laser driving
Recent interest in developing fast spintronic devices and laser-controllable magnetic solids has sparked tremendous experimental and theoretical efforts to understand and manipulate ultrafast dynamics in materials. Studies of spin dynamics in the terahertz (THz) frequency range are particularly important for elucidating microscopic pathways toward novel device functionalities. Here, we review THz phenomena related to spin dynamics in rare-earth orthoferrites, a class of materials promising for antiferromagnetic spintronics. We expand this topic into a description of four key elements. (1) We start by describing THz spectroscopy of spin excitations for probing magnetic phase transitions in thermal equilibrium. While acoustic magnons are useful indicators of spin reorientation transitions, electromagnons that arise from dynamic magnetoelectric couplings serve as a signature of inversion-symmetry-breaking phases at low temperatures. (2) We then review the strong laser driving scenario, where the system is excited far from equilibrium and thereby subject to modifications to the free-energy landscape. Microscopic pathways for ultrafast laser manipulation of magnetic order are discussed. (3) Furthermore, we review a variety of protocols to manipulate coherent THz magnons in time and space, which are useful capabilities for antiferromagnetic spintronic applications. (4) Finally, new insights into the connection between dynamic magnetic coupling in condensed matter and the Dicke superradiant phase transition in quantum optics are provided. By presenting a review on an array of THz spin phenomena occurring in a single class of materials, we hope to trigger interdisciplinary efforts that actively seek connections between subfields of spintronics, which will facilitate the invention of new protocols of active spin control and quantum phase engineering.
1
Acoustic magnons indicate spin reorientation transitions, while electromagnons reveal inversion-symmetry-breaking phases at low temperatures.
2
Dynamic magnetic coupling in condensed-matter orthoferrites has connections to the Dicke superradiant phase transition, suggesting interdisciplinary opportunities for quantum phase engineering.
3
Multiple protocols exist to control coherent THz magnons in time and space, enabling capabilities relevant for antiferromagnetic spintronic applications.
4
Strong laser driving can excite rare-earth orthoferrites far from equilibrium, modifying the magnetic free-energy landscape and enabling ultrafast manipulation of magnetic order.
5
THz spectroscopy of rare-earth orthoferrites probes spin excitations and can detect magnetic phase transitions in thermal equilibrium.

Rare-earth orthoferrites (RFeO3) materials class

Terahertz-frequency spin dynamics and related phenomena (THz spin excitations, acoustic magnons, electromagnons), their manipulation by strong laser driving and coherent-control protocols, and connections to dynamic magnetic coupling and Dicke superradiant–like phase behavior

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2022-01-01
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Junichiro Kono
Xinwei Li
Dasom Kim
Yincheng Liu
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