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May 20, 2026Nano Letters0 citations

Nodal-Loop Engineering of the Second-Order Magneto-Optical Effect in Two-Dimensional Topological Altermagnets

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XWXiangju WangBeijing Institute of TechnologyPYPing YangTianjin Academy of Fine ArtsGLG H LiuBeijing Institute of Technology

Key Points

  • This research aims to explore how nodal-loop engineering can enhance second-order magneto-optical effects in two-dimensional topological altermagnets.
  • Utilized V2Te2O as a model system for two-dimensional topological altermagnets.
  • Investigated Néel-vector rotation and its impact on nodal loops near the Brillouin-zone boundary.
  • Analyzed the effects of carrier doping on the Fermi level and its role in tunability of magneto-optical responses.
  • Nodal-loop engineering significantly enhanced the infrared magneto-optical response related to interband transitions.
  • Carrier doping allowed continuous tunability of the magneto-optical response.
  • The terahertz magneto-optical effect was largely influenced by intraband dynamics.

Abstract

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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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/6a0d5064f03e14405aa9c296https://doi.org/10.1021/acs.nanolett.6c01346
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