Ultrafast manipulation of the NiO antiferromagnetic order via sub-gap optical excitation
Xiaocui Wang, Robin Y. Engel, Igor Vaskivskyi, Diego Turenne, Vishal, Shokeen, Alexander Yaroslavtsev, Oscar Gr{\aa}n\"as, Ronny Knut, Jan O., Schunck, Siarhei Dziarzhytski, G\"unter Brenner, Ru-Pan Wang, Marion, Kuhlmann, Frederik Kuschewski, Wibke Bronsch, Christian

TL;DR
This study demonstrates that sub-gap optical excitation in NiO can transiently reduce its band gap and antiferromagnetic order, with magnon excitations playing a key role in this ultrafast manipulation.
Contribution
It provides direct experimental evidence that sub-gap optical fields can coherently manipulate magnetic order and electronic structure in NiO, highlighting magnon involvement.
Findings
Band gap reduction persists up to 2.4 ps
Antiferromagnetic order decreases with 65 K spin temperature rise
Magnon excitations contribute significantly to the band gap change
Abstract
Wide-band-gap insulators such as NiO offer the exciting prospect of coherently manipulating electronic correlations with strong optical fields. Contrary to metals where rapid dephasing of optical excitation via electronic processes occurs, the sub-gap excitation in charge-transfer insulators has been shown to couple to low-energy bosonic excitations. However, it is currently unknown if the bosonic dressing field is composed of phonons or magnons. Here we use the prototypical charge-transfer insulator NiO to demonstrate that 1.5 eV sub-gap optical excitation leads to a renormalised NiO band-gap in combination with a significant reduction of the antiferromagnetic order. We employ element-specific X-ray reflectivity at the FLASH free-electron laser to demonstrate the reduction of the upper band-edge at the O 1s-2p core-valence resonance (K-edge) whereas the antiferromagnetic order is…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Magnetic properties of thin films · Magneto-Optical Properties and Applications
