Coupling between defect mode and topological edge state for dual-band spin-dependent perfect absorption

Conventional spin-dependent perfect absorption (PA) schemes based on multi-Weyl semimetals (mWSMs) are largely confined to single-mode operation, where spin splitting is governed exclusively by Hall conductivity and lacks external tunability. Here, we realize external control of spin splitting in a one-dimensional photonic-crystal heterostructure embedded with mWSMs via hybrid coupling between defect mode and topological edge state. The coupling strength acts as an independent tuning parameter, enabling continuous modulation of the spin-splitting amplitude for each hybrid mode. Moreover, the two hybrid modes exhibit asymmetric responses with opposite trends and unequal magnitudes to the Weyl node separation and Weyl cone tilt angle—a behavior irreproducible by linear superposition of single-mode spectra. Under left-handed circularly polarized and right-handed circularly polarized light excitation, this mechanism yields four independently addressable PA peaks across two frequency bands. This work elucidates the underlying modulation mechanism of spin splitting via coupled modes, offering new insights for designing spin-dependent light–matter interactions in topological photonics.

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Publication Details

Journal
Journal of Applied Physics
Published
2026-10-08
DOI
https://doi.org/10.1063/5.0355678
Primary Topic
Topological Materials and Phenomena
Type
article
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article

Coupling between defect mode and topological edge state for dual-band spin-dependent perfect absorption

Jipeng Wu, Rongzhou Zeng, Yating Wang, Lingfeng Liao et al.
Journal of Applied Physics
Topological Materials and Phenomena
article

Coupling between defect mode and topological edge state for dual-band spin-dependent perfect absorption

Jipeng Wu, Rongzhou Zeng, Yating Wang, Lingfeng Liao, Yulei Liao, Jiaxuan Liu, Jing Liu
article en

Abstract

Conventional spin-dependent perfect absorption (PA) schemes based on multi-Weyl semimetals (mWSMs) are largely confined to single-mode operation, where spin splitting is governed exclusively by Hall conductivity and lacks external tunability. Here, we realize external control of spin splitting in a one-dimensional photonic-crystal heterostructure embedded with mWSMs via hybrid coupling between defect mode and topological edge state. The coupling strength acts as an independent tuning parameter, enabling continuous modulation of the spin-splitting amplitude for each hybrid mode. Moreover, the two hybrid modes exhibit asymmetric responses with opposite trends and unequal magnitudes to the Weyl node separation and Weyl cone tilt angle—a behavior irreproducible by linear superposition of single-mode spectra. Under left-handed circularly polarized and right-handed circularly polarized light excitation, this mechanism yields four independently addressable PA peaks across two frequency bands. This work elucidates the underlying modulation mechanism of spin splitting via coupled modes, offering new insights for designing spin-dependent light–matter interactions in topological photonics.

Journal of Applied PhysicsVol. 140(14)
Hunan University of Technology (CN)
Openalex Percentile: Top 19%
Topological Materials and Phenomena
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Coupling between defect mode and topological edge state for dual-band spin-dependent perfect absorption — Jipeng Wu, Rongzhou Zeng, et al. · Journal of Applied Physics (2026) | TGRS Research Map | TGRS