All-optical magnetometric characterization of the antiferromagnetic exchange-spring system Mn$_2$Au|Py by terahertz spin-torques
Yannic Behovits, Alexander L. Chekhov, Bruno Rosinus Serrano, Amon, Ruge, Sonka Reimers, Yaryna Lytvynenko, Mathias Kl\"aui, Martin Jourdan and, Tobias Kampfrath

TL;DR
This study demonstrates a method to control and characterize the antiferromagnetic Neel vector in Mn2Au|Py stacks using terahertz spin-torques and magneto-optic probes, revealing domain dynamics and spin responses.
Contribution
It introduces a THz-pump magneto-optic technique to analyze antiferromagnetic spin dynamics and domain configurations in AFM|FM heterostructures, advancing ultrafast spintronics research.
Findings
AFM Neel vector can be controlled by external magnetic fields.
THz spin-torques excite in-plane antiferromagnetic magnons.
Optical response changes are dominated by AFM spin degrees of freedom.
Abstract
Antiferromagnetic materials have great potential for spintronic applications at terahertz (THz) frequencies. However, in contrast to ferromagnets, experimental studies of antiferromagnets are often challenging due to a lack of straightforward external control of the N\'eel vector . Here, we study an AFM|FM stack consisting of an antiferromagnetic metal layer (AFM) of the novel material Mn2Au and a ferromagnetic metal layer (FM) of NiFe. In this exchange-spring system, of AFM Mn2Au can be controlled by the application of an external magnetic field B_ext. To characterize the AFM|FM stack as a function of the quasi-static , we perform THz-pump magneto-optic probe experiments. We identify signal components that can consistently be explained by the in-plane antiferromagnetic magnon mode excited by field-like N\'eel spin-orbit torques…
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Taxonomy
TopicsMechanical and Optical Resonators · Photonic and Optical Devices · Magneto-Optical Properties and Applications
