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  Nonresonant nonlinear magnonics in an antiferromagnet

Zhang, G.-F., Haque, S. R. U., Kaj, K., Chen, X., Seifert, U. F. P., Zhang, J., et al. (2024). Nonresonant nonlinear magnonics in an antiferromagnet.

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2411.10579.pdf (Preprint), 13MB
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 Creators:
Zhang, G.-F.1, Author
Haque, S. R. U.1, Author
Kaj, K.2, 3, Author           
Chen, X.1, Author
Seifert, U. F. P.1, Author
Zhang, J.1, Author
Cremin, K. A.1, Author
Balents, L.1, Author
Wilson, S. D.1, Author
Averitt, R. D.1, Author
Affiliations:
1external, ou_persistent22              
2Department of Physics, University of California San Diego, ou_persistent22              
3Quantum Condensed Matter Dynamics, Condensed Matter Dynamics Department, Max Planck Institute for the Structure and Dynamics of Matter, Max Planck Society, ou_1938293              

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Free keywords: Condensed Matter, Strongly Correlated Electrons, cond-mat.str-el
 Abstract: Antiferromagnets exhibit rapid spin dynamics in a net zero magnetic background which enables novel spintronic applications and interrogation of many-body quantum phenomena. The layered antiferromagnet Sr2IrO4 hosts an exotic spin one-half Mott insulating state with an electronic gap arising from on-site Coulomb repulsion and strong spin-orbit coupling. This makes Sr2IrO4 an interesting candidate to interrogate dynamical attributes of the magnetic order using ultrafast laser pulses. We investigate the magnetization dynamics of Sr2IrO4 following circularly-polarized photoexcitation with below-gap mid-infrared (mid-IR -- 9 μm) and above-gap near-infrared (near-IR -- 1.3 μm) pulses. In both cases, we observe excitation of a zone-center coherent magnon mode featuring a 0.5 THz oscillation in the pump-induced Kerr-rotation signal. However, only below-gap excitation exhibits a helicity dependent response and linear (quadratic) scaling of the coherent magnon amplitude with excitation fluence (electric field). Moreover, below-gap excitation has a magnon generation efficiency that is at least two orders of magnitude greater in comparison to above-gap excitation. Our analysis indicates that the helicity dependence and enhanced generation efficiency arises from a unique one-photon two-magnon coupling mechanism for magnon generation. Thus, preferential spin-photon coupling without photoexcitation of electrons permits extremely efficient magnon generation. Our results reveal new possibilities for ultrafast control of antiferromagnets.

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Language(s): eng - English
 Dates: 2024-11-15
 Publication Status: Published online
 Pages: 29
 Publishing info: -
 Table of Contents: -
 Rev. Type: No review
 Identifiers: arXiv: 2411.10579
 Degree: -

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