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Manipulation of ferromagnetism with a light-driven nonlinear Edelstein-Zeeman field

Yinchuan Lv, W. Joe Meese, Azel Murzabekova, Jennifer Freedberg, Changjun Lee, Yiming Sun, Joshua P. Wakefield, Takashi Kurumaji, Joseph George Checkelsky, Fahad Mahmood

Revista con revisión por pares

En palabras de los autores

Optical control of magnetization is often symmetry-forbidden because electric fields and magnetization transform differently under inversion and time-reversal. However, through even-order nonlinear response, optical excitation can generate a nonequilibrium magnetic density (the nonlinear Edelstein effect) that acts as an internal Edelstein-Zeeman field coupling to slower magnetic degrees of freedom. Here we demonstrate non-thermal, ultrafast optical control of ferromagnetism in the centrosymmetric van der Waals semiconductor Cr2Ge2Te6 via a resonant nonlinear Edelstein effect. Using time-domain THz emission spectroscopy under near-infrared excitation, we directly observe magnetic dipole radiation arising from optically driven magnetization dynamics. The polarization, fluence, and temperature dependences of the THz emission are quantitatively captured by a mean-field description of a weakly anisotropic Heisenberg ferromagnet subject to an Edelstein-Zeeman field. Our results establish a general nonequilibrium route to optical control of magnetism in centrosymmetric materials. Ultrafast non-thermal control of magnetism is a major goal of spintronics, however, in centrosymmetric materials, symmetry typically forbids direct control via electric fields. Here, Lv, Meese and coauthors use the non-linear Edelstein effect to create a non-equilibrium magnetic density in the van der Waals magnetic semiconductor Cr2Ge2Te6.

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Apareció: domingo, 27 de septiembre. Nature Communications. Revista con revisión por pares.

DOI: 10.1038/s41467-026-77965-4