Teymoori Morteza, Yalcinkaya Arda Deniz
Institute of Biomedical Engineering, Boğaziçi University, Istanbul, Turkey.
Department of Microsystems Engineering (IMTEK), University of Freiburg, 79110, Freiburg im Breisgau, Germany.
Sci Rep. 2024 Aug 9;14(1):18556. doi: 10.1038/s41598-024-69112-0.
Highly efficient Metamaterials are necessary for applications in sensing, communication, etc. Fano resonance and electromagnetically induced transparency-like phenomena are essential for obtaining high Q-factor and sensitive Metamaterials. Employing both numerical simulations and experimental analysis, we investigate the emergence of Fano resonance in cross-resonator Metamaterials facilitated by the conductive coupling between dark and bright resonators. We analyze the gradual shift of the fano resonance by tuning the dark resonator and finally form an electromagnetically induced transparency-like transmission peak. The strong coupling of the resonator is observed in the form of an anti-crossing and discussed through analytical models. We demonstrate that the coupling strength of the dark and bright resonance in our metamaterial is proportional to the asymmetry parameter, albeit at the cost of the Fano resonance's Q-factor. The findings and methods introduced in this study can be used to develop highly efficient THz Metamaterials for various applications operable in room conditions.
高效的超材料对于传感、通信等应用来说是必不可少的。法诺共振和类电磁诱导透明现象对于获得高品质因数和高灵敏度的超材料至关重要。通过数值模拟和实验分析相结合的方式,我们研究了暗谐振器与亮谐振器之间的传导耦合所促成的交叉谐振器超材料中法诺共振的出现。我们通过调节暗谐振器来分析法诺共振的逐渐偏移,并最终形成一个类电磁诱导透明的传输峰。以反交叉的形式观察到了谐振器的强耦合,并通过解析模型进行了讨论。我们证明,尽管会以法诺共振的品质因数为代价,但我们超材料中暗谐振和亮谐振的耦合强度与不对称参数成正比。本研究中介绍的这些发现和方法可用于开发在室温条件下可用于各种应用的高效太赫兹超材料。