Tunable magnons of an antiferromagnetic Mott insulator via interfacial metal-insulator transitions.
basic_science · Level V
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- Record sourced from PubMed, PMID 40234464.
- Also identified by DOI 10.1038/s41467-025-58922-z and PMC identifier 12000505.
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Abstract
Antiferromagnetic insulators present a promising alternative to ferromagnets due to their ultrafast spin dynamics essential for low-energy terahertz spintronic device applications. Magnons, i.e., quantized spin waves capable of transmitting information through excitations, serve as a key functional element in this paradigm. However, identifying external mechanisms to effectively tune magnon properties has remained a major challenge. Here we demonstrate that interfacial metal-insulator transitions offer an effective method for controlling the magnons of Sr<sub>2</sub>IrO<sub>4</sub>, a strongly spin-orbit coupled antiferromagnetic Mott insulator. Resonant inelastic x-ray scattering experiments reveal a significant softening of zone-boundary magnon energies in Sr<sub>2</sub>IrO<sub>4</sub> films epitaxially interfaced with metallic 4d transition-metal oxides. Therefore, the magnon dispersion of Sr<sub>2</sub>IrO<sub>4</sub> can be tuned by metal-insulator transitions of the 4d transition-metal oxides. We tentatively attribute this non-trivial behavior to a long-range phenomenon mediated by magnon-acoustic phonon interactions. Our experimental findings introduce a strategy for controlling magnons and underscore the need for further theoretical studies to better understand the underlying microscopic interactions between magnons and phonons.