Nonperturbative nonlinear magnonics in a strongly driven antiferromagnet

Nonlinear dynamics govern a wide array of natural phenomena and are essential for understanding nonequilibrium behaviors in condensed matter systems. In magnetically ordered materials, magnons—the quanta of spin waves—exhibit intrinsic nonlinearities that are of great interest in fundamental research and practical applications. Despite progress in the nonlinear control of magnon modes in antiferromagnetic materials, the transition from perturbative to nonperturbative regimes of magnon coherences has remained elusive. Here, we explore the nonlinear dynamics of a magnon mode in an antiferromagnet using two-dimensional terahertz spectroscopy with waveguide-enhanced terahertz fields. By driving the magnon mode far from equilibrium, we demonstrate the emergence of high-order magnon coherences and delineate a distinct transition into nonperturbative magnon nonlinearities. This behavior originates from the intrinsic anharmonicity of the effective magnetic free-energy landscape and marks a regime dominated by magnon self-interactions at large spin deflection angles. These findings provide fundamental mechanistic insights that might be exploited for ultrafast switching and other advanced magnonic applications.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-15
DOI
https://doi.org/10.1073/pnas.2606002123
Primary Topic
Magnetic properties of thin films
Type
article
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Nonperturbative nonlinear magnonics in a strongly driven antiferromagnet

Keith A. Nelson, Zhuquan Zhang, Takayuki Kurihara, David Rohrbach
Proceedings of the National Academy of Sciences
Magnetic properties of thin films
article

Nonperturbative nonlinear magnonics in a strongly driven antiferromagnet

Keith A. Nelson, Zhuquan Zhang, Takayuki Kurihara, David Rohrbach
article en

Abstract

Nonlinear dynamics govern a wide array of natural phenomena and are essential for understanding nonequilibrium behaviors in condensed matter systems. In magnetically ordered materials, magnons—the quanta of spin waves—exhibit intrinsic nonlinearities that are of great interest in fundamental research and practical applications. Despite progress in the nonlinear control of magnon modes in antiferromagnetic materials, the transition from perturbative to nonperturbative regimes of magnon coherences has remained elusive. Here, we explore the nonlinear dynamics of a magnon mode in an antiferromagnet using two-dimensional terahertz spectroscopy with waveguide-enhanced terahertz fields. By driving the magnon mode far from equilibrium, we demonstrate the emergence of high-order magnon coherences and delineate a distinct transition into nonperturbative magnon nonlinearities. This behavior originates from the intrinsic anharmonicity of the effective magnetic free-energy landscape and marks a regime dominated by magnon self-interactions at large spin deflection angles. These findings provide fundamental mechanistic insights that might be exploited for ultrafast switching and other advanced magnonic applications.

Proceedings of the National Academy of SciencesVol. 123(38)
Massachusetts Institute of Technology (US), The University of Tokyo (JP)
Openalex Percentile: Top 13%
Magnetic properties of thin films
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Nonperturbative nonlinear magnonics in a strongly driven antiferromagnet — Keith A. Nelson, Zhuquan Zhang, et al. · Proceedings of the National Academy of Sciences (2026) | TGRS Research Map | TGRS