论文标题

光学磁性镜头:朝向主动调谐Terahertz光学元件

Optical Magnetic Lens: towards actively tunable terahertz optics

论文作者

Shamuilov, Georgii, Domina, Katerina, Khardikov, Vyacheslav, Nikitin, Alexey Y., Goryashko, Vitaliy

论文摘要

当我们阅读本文时,我们的眼睛会动态调整焦距,以使线路图像关注视网膜。同样,在许多光学应用中,焦距必须动态调谐。为了寻求紧凑性和可调节性,引入了基于跨膜的扁平镜头。但是,它们的动态可调性仍然受到限制,因为它们的功能主要依赖于固定的几何形状。相比之下,我们提出了一个可调光学磁性镜头(OML)的原始概念,该概念使用在不均匀磁场中的磁光材料的亚波长层聚焦光子束。我们将OML概念应用于各种材料,发现OML的效果在从微波到可见光的广泛频率范围内存在。对于Terahertz的光,OML可以在Picsecond Time尺度上允许焦距的50%相对可调性,这对于显微镜中电子束的超快形状具有实际感兴趣。基于磁光天然体积和2D材料的OML可能会在THZ梁上通过3D光学显微镜和带电颗粒束加速的技术发现广泛使用。

As we read this text, our eyes dynamically adjust the focal length to keep the line image in focus on the retina. Similarly, in many optics applications the focal length must be dynamically tunable. In the quest for compactness and tunability, flat lenses based on metasurfaces were introduced. However, their dynamic tunability is still limited because their functionality mostly relies upon fixed geometry. In contrast, we put forward an original concept of a tunable Optical Magnetic Lens (OML) that focuses photon beams using a subwavelength-thin layer of a magneto-optical material in a non-uniform magnetic field. We applied the OML concept to a wide range of materials and found out that the effect of OML is present in a broad frequency range from microwaves to visible light. For terahertz light, OML can allow 50% relative tunability of the focal length on the picosecond time scale, which is of practical interest for ultrafast shaping of electron beams in microscopy. The OML based on magneto-optical natural bulk and 2D materials may find broad use in technologies such as 3D optical microscopy and acceleration of charged particle beams by THz beams.

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