Nonreciprocal directional dichroism at telecom wavelengths
K. Park, M. O. Yokosuk, M. Goryca, J. J. Yang, S. A. Crooker, S.-W., Cheong, K. Haule, D. Vanderbilt, H.-S. Kim, and J. L. Musfeldt

TL;DR
This paper demonstrates controllable nonreciprocal directional dichroism in Ni$_3$TeO$_6$ at telecom wavelengths, combining experiments and first-principles calculations to reveal underlying toroidal moments and symmetry effects.
Contribution
It provides the first experimental verification of nonreciprocal effects in the toroidal geometry of Ni$_3$TeO$_6$ and shows deterministic control across telecom wavelengths.
Findings
Nonreciprocal effects are largest near 1.1 eV due to Ni toroidal moments.
Control of nonreciprocity is achieved across the entire telecom wavelength range.
The microscopic model captures the observed nonreciprocal behavior.
Abstract
Magnetoelectrics with ultra-low symmetry and spin-orbit coupling are well known to display a number of remarkable properties including nonreciprocal directional dichroism. As a polar and chiral magnet, NiTeO is predicted to host this effect in three fundamentally different configurations, although only two have been experimentally verified. Inspired by the opportunity to unravel the structure-property relations of such a unique light-matter interaction, we combined magneto-optical spectroscopy and first-principles calculations to reveal nonreciprocity in the toroidal geometry and compared our findings with the chiral configurations. We find that formation of Ni toroidal moments is responsible for the largest effects near 1.1 eV - a tendency that is captured by our microscopic model and computational implementation. At the same time, we demonstrate deterministic control of…
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Taxonomy
TopicsNeural Networks and Reservoir Computing · Blind Source Separation Techniques · Magnetic properties of thin films
