All-optical control of antiferromagnetic domains via an inverse optical magnetoelectric effect

Fuente: arXiv
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Main Authors: Toyoda, Shingo, Kocsis, Vilmos, Tokunaga, Yusuke, Kézsmárki, István, Taguchi, Yasujiro, Arima, Taka-hisa, Tokura, Yoshinori, Ogawa, Naoki
Format: Preprint
Published: 2025
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author Toyoda, Shingo
Kocsis, Vilmos
Tokunaga, Yusuke
Kézsmárki, István
Taguchi, Yasujiro
Arima, Taka-hisa
Tokura, Yoshinori
Ogawa, Naoki
author_facet Toyoda, Shingo
Kocsis, Vilmos
Tokunaga, Yusuke
Kézsmárki, István
Taguchi, Yasujiro
Arima, Taka-hisa
Tokura, Yoshinori
Ogawa, Naoki
contents Antiferromagnets are a promising platform for next-generation spintronics due to their ultrafast spin dynamics and robustness to external fields. All-optical control of antiferromagnetic order is essential to fully exploit their potential in energy-efficient and high-speed spintronic and memory applications. However, optical writing of antiferromagnetic domains remains a fundamental challenge, as conventional magneto-optical techniques rely on net magnetization, which is absent in antiferromagnets. In certain multiferroic antiferromagnets, the magnetic toroidal moment provides an additional degree of freedom through its inherent magnetoelectric coupling. This coupling at higher frequencies results in the optical magnetoelectric effect (OME), which manifests as a directional asymmetry in light propagation and enables optical probing of antiferromagnetic states. Here, we demonstrate all-optical writing of antiferromagnetic domains using the inverse optical magnetoelectric effect (IOME) in ferrotoroidic LiNiPO4. The writing process is nonvolatile, non-thermal, and deterministic, driven solely by reversing the light propagation direction. This directional control arises from a strong coupling between the photon linear momentum and the magnetic toroidal moment, enabling the repeatable switching between time-reversed domains with arbitrary light polarization. Our findings establish IOME as a distinct mechanism for manipulating antiferromagnetic order, opening a new paradigm in opto-magnetism driven by photon momentum.
format Preprint
id arxiv_https___arxiv_org_abs_2506_07051
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle All-optical control of antiferromagnetic domains via an inverse optical magnetoelectric effect
Toyoda, Shingo
Kocsis, Vilmos
Tokunaga, Yusuke
Kézsmárki, István
Taguchi, Yasujiro
Arima, Taka-hisa
Tokura, Yoshinori
Ogawa, Naoki
Materials Science
Strongly Correlated Electrons
Antiferromagnets are a promising platform for next-generation spintronics due to their ultrafast spin dynamics and robustness to external fields. All-optical control of antiferromagnetic order is essential to fully exploit their potential in energy-efficient and high-speed spintronic and memory applications. However, optical writing of antiferromagnetic domains remains a fundamental challenge, as conventional magneto-optical techniques rely on net magnetization, which is absent in antiferromagnets. In certain multiferroic antiferromagnets, the magnetic toroidal moment provides an additional degree of freedom through its inherent magnetoelectric coupling. This coupling at higher frequencies results in the optical magnetoelectric effect (OME), which manifests as a directional asymmetry in light propagation and enables optical probing of antiferromagnetic states. Here, we demonstrate all-optical writing of antiferromagnetic domains using the inverse optical magnetoelectric effect (IOME) in ferrotoroidic LiNiPO4. The writing process is nonvolatile, non-thermal, and deterministic, driven solely by reversing the light propagation direction. This directional control arises from a strong coupling between the photon linear momentum and the magnetic toroidal moment, enabling the repeatable switching between time-reversed domains with arbitrary light polarization. Our findings establish IOME as a distinct mechanism for manipulating antiferromagnetic order, opening a new paradigm in opto-magnetism driven by photon momentum.
title All-optical control of antiferromagnetic domains via an inverse optical magnetoelectric effect
topic Materials Science
Strongly Correlated Electrons
url https://arxiv.org/abs/2506.07051