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Spectral and Angle-Resolved Magneto-Optical Characterization of Photonic Nanostructures
Published on: November 21, 2019
Nodal-Loop Engineering of the Second-Order Magneto-Optical Effect in Two-Dimensional Topological Altermagnets
Xiangju Wang1, Ping Yang2, Gui-Bin Liu1
1Key Lab of Advanced Optoelectronic Quantum Architecture and Measurement (MOE), Beijing Key Laboratory of Quantum Matter State Control and Ultra-Precision Measurement Technology, School of Physics, Beijing Institute of Technology, Beijing 100081, China.
None:
Magneto-optical effects (MOEs) provide powerful noncontact probes of magnetic order and underpin a broad range of photonic and information technologies. However, large and controllable second-order MOEs remain scarce. Here, using two-dimensional topological altermagnet V2Te2O as a model system, we demonstrate that nodal-loop engineering offers an effective strategy to enhance and tune second-order MOEs across the infrared-to-terahertz range. Néel-vector rotation selectively gaps one of nodal loops near the Brillouin-zone boundary, activating spin-conserved ladder-like interband transitions that generate a pronounced infrared magneto-optical response, while the terahertz response is dominated by anisotropic intraband dynamics. Carrier doping further shifts the Fermi level relative to the gapped nodal loop, enabling continuous tunability and even sign reversal of the magneto-optical response, and enhancing both infrared and terahertz signals. Our results suggest nodal-loop engineering as a promising strategy for large and tunable second-order MOEs in two-dimensional topological altermagnets, highlighting potential for ultrafast, low-power opto-spintronic applications.
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