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Auteurs principaux: Tong, Mingyu, Hu, Yuze, Hu, Siyang, Chen, Hongsheng, Jiang, Tian, Yang, Yihao
Format: Preprint
Publié: 2025
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Accès en ligne:https://arxiv.org/abs/2508.05200
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author Tong, Mingyu
Hu, Yuze
Hu, Siyang
Chen, Hongsheng
Jiang, Tian
Yang, Yihao
author_facet Tong, Mingyu
Hu, Yuze
Hu, Siyang
Chen, Hongsheng
Jiang, Tian
Yang, Yihao
contents Terahertz (THz) nonreciprocal devices are essential for advancing future fundamental science, wireless communications, imaging, and sensing. Current THz nonreciprocal devices mostly rely on magnetic materials, which, however, suffer from large volume, operation under an external magnetic field, and low-temperature environment, rendering them poorly compatible with miniaturized developments. Here,we propose an unconventional method for achieving THz nonreciprocity free from magnetic materials. The scheme relies on a temporal dissipative barrier, a transient loss variation generated by photoexcited carriers, and the nonreciprocity arises from the distinct coupling behavior for different polarizations with the barrier. The isolation efficiency correlates with the temporal barrier width, resonant mode detuning, and the working frequency, and has been significantly enhanced by introducing a dark mode. We experimentally confirm our method in a THz optically active metasurface with wave-flow isolation exceeding 20 dB across a bandwidth greater than 0.4 THz. Theoretical predictions indicate peak isolation surpassing 60 dB, with experimental results achieving over 30 dB at 0.7 THz. Our approach unlocks the potential of miniaturized, integrated, magnetic-free THz nonreciprocal devices for various applications.
format Preprint
id arxiv_https___arxiv_org_abs_2508_05200
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Magnetic-free terahertz nonreciprocity via temporal dissipative barriers
Tong, Mingyu
Hu, Yuze
Hu, Siyang
Chen, Hongsheng
Jiang, Tian
Yang, Yihao
Optics
Applied Physics
Terahertz (THz) nonreciprocal devices are essential for advancing future fundamental science, wireless communications, imaging, and sensing. Current THz nonreciprocal devices mostly rely on magnetic materials, which, however, suffer from large volume, operation under an external magnetic field, and low-temperature environment, rendering them poorly compatible with miniaturized developments. Here,we propose an unconventional method for achieving THz nonreciprocity free from magnetic materials. The scheme relies on a temporal dissipative barrier, a transient loss variation generated by photoexcited carriers, and the nonreciprocity arises from the distinct coupling behavior for different polarizations with the barrier. The isolation efficiency correlates with the temporal barrier width, resonant mode detuning, and the working frequency, and has been significantly enhanced by introducing a dark mode. We experimentally confirm our method in a THz optically active metasurface with wave-flow isolation exceeding 20 dB across a bandwidth greater than 0.4 THz. Theoretical predictions indicate peak isolation surpassing 60 dB, with experimental results achieving over 30 dB at 0.7 THz. Our approach unlocks the potential of miniaturized, integrated, magnetic-free THz nonreciprocal devices for various applications.
title Magnetic-free terahertz nonreciprocity via temporal dissipative barriers
topic Optics
Applied Physics
url https://arxiv.org/abs/2508.05200