Observation of electromagnetically induced transparency and absorption in Yttrium Iron Garnet loaded split ring resonator

•Photon-magnon coupling is observed in Split Ring Resonators.•The system is described by one adjustable parameter (denoted τ).•When τ is low, electromagnetically induced transparency is observed.•When τ is high, electromagnetically induced absorption is observed. In this paper, we propose a new meth...

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Veröffentlicht in:Journal of magnetism and magnetic materials 2018-04, Vol.451, p.235-242
Hauptverfasser: Tay, Z.J., Soh, W.T., Ong, C.K.
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Sprache:eng
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Zusammenfassung:•Photon-magnon coupling is observed in Split Ring Resonators.•The system is described by one adjustable parameter (denoted τ).•When τ is low, electromagnetically induced transparency is observed.•When τ is high, electromagnetically induced absorption is observed. In this paper, we propose a new method of controlling microwave transmission from Electromagnetically Induced Absorption (EIA) to Electromagnetically Induced Transparency (EIT). EIA describes the state where the system strongly absorbs microwaves, whereas EIT describes the state in which the system is transparent to microwaves. Control is achieved via coupling of the 3 GHz photon mode of a metamaterial Split Ring Resonator (SRR) to the spin wave magnon modes of a Yttrium Iron Garnet (YIG) bulk. The system is described by a 2-body interaction matrix with an additional fitting parameter τ which takes into account the fact that the microstrip feed line could excite the SRR as well as the YIG. The parameter τ reveals the effect of geometry and shielding on the coupling behaviour and gives rise to unique physics. In low τ (τ⩽2) configurations, only EIT is reported. However, in high τ (τ≈10) configurations, EIA is reported. Furthermore, we report that the system can be easily changed from a low τ to high τ configuration by shielding the SRR from the microstrip with a thin metal piece. Varying the τ parameter through shielding is thus proposed as a new method of controlling the microwave transmission at the coupling region.
ISSN:0304-8853
1873-4766
DOI:10.1016/j.jmmm.2017.11.029