论文标题
Terahertz感应的全dilectric Metasurfaces的损失引起的性能极限
Loss-induced performance limits of all-dielectric metasurfaces for terahertz sensing
论文作者
论文摘要
由于存在以高质量因素为特征的强共振,因此已经提出了由连续体中准结合状态引起的共鸣的元信息。控制几何参数,可以调整质量因子,从理论上讲是随意设计的。但是,材料的损失严重绑定了跨表面性能并限制共振的质量因素。因此,已经提出了全端跨额叶,以替代金属二焊结构,以减少损失并实现极端功能。当通过低损坏材料实施时,这些结构通常被认为是无损的,并被认为是THZ频带中的超敏感器。在本文中,我们研究了考虑逼真的材料并研究质量因素的局限性,在全端元跨面中损失的影响。此外,我们将这些结构作为传感器的性能与支持非凡光学传输的纳米结构进行了比较。我们的结果表明,即使在低损失材料中,材料的损失也严重限制了全端元信息的感应性能,并且可以通过支持非凡的光学传输的结构来超越其性能。
Metasurfaces providing resonances arising from quasi-bound states in the continuum have been proposed as sensors in the THz band due to the existence of strong resonances characterized by high quality factors. Controlling geometrical parameters, the quality factor can be adjusted and, theoretically, designed at will. However, losses in materials critically bound the metasurface performance and limit the quality factor of the resonances. For this reason, all-dielectric metasurfaces have been proposed as an alternative to metal-dielectric structures to reduce losses and achieve extreme functionalities. When implemented by low-loss materials, these structures are usually considered lossless and proposed as ultrasensitive sensors in the THz band. In this paper, we examine the effect of losses in all-dielectric metasurfaces considering realistic materials and study the limitations in the quality factor. In addition, we compare the performance of these structures as sensors with a nanostructure supporting extraordinary optical transmission. Our results show that material loss, even in low-loss materials, severely limits the sensing performance in all-dielectric metasurfaces, and that their performance can be surpassed by structures supporting extraordinary optical transmission.