Suppr超能文献

基于带有液晶的石墨烯光栅的宽带可控太赫兹四分之一波片。

Broadband controllable terahertz quarter-wave plate based on graphene gratings with liquid crystals.

作者信息

Ji Yun-Yun, Fan Fei, Wang Xiang-Hui, Chang Sheng-Jiang

出版信息

Opt Express. 2018 May 14;26(10):12852-12862. doi: 10.1364/OE.26.012852.

Abstract

Developing the broadband controllable or tunable terahertz (THz) polarization and phase devices are in an urgent need. In this paper, we demonstrate a broadband controllable THz quarter-wave plate (QWP) with double layers of graphene grating and a layer of liquid crystals. The double layer graphene gratings can achieve a switchable QWP to switch between linear-to-linear and linear-to-circular polarization states with over 0.35THz bandwidth in the ON or OFF state by applying biased electric field on the graphene grating or not. Moreover, this QWP based on the structure of periodic gradient grating can significantly enhance the phase difference between two orthogonally polarized components compared to that based on equal-periodic grating structure because of the additional phase distribution of the gradient structures. Furthermore, we incorporate liquid crystals into the graphene grating to form a tunable QWP, of which operating frequency can be continuously tuned in a wide frequency range by electrically controlling the molecular director of the liquid crystals. The results show that the graphene periodic gradient grating with LCs not only broadens the operating bandwidth, but also reduces the external electric field. This device offers a further step in the development of THz polarization and phase devices for potential applications in THz polarized imaging, spectroscopy, and communication.

摘要

迫切需要开发宽带可控或可调谐的太赫兹(THz)偏振和相位器件。在本文中,我们展示了一种具有双层石墨烯光栅和一层液晶的宽带可控太赫兹四分之一波片(QWP)。通过对石墨烯光栅施加或不施加偏置电场,双层石墨烯光栅可以实现一个可切换的QWP,在开启或关闭状态下,在超过0.35THz的带宽内实现线性到线性和线性到圆偏振状态之间的切换。此外,与基于等周期光栅结构的QWP相比,这种基于周期性梯度光栅结构的QWP由于梯度结构的附加相位分布,可以显著增强两个正交偏振分量之间的相位差。此外,我们将液晶引入石墨烯光栅中以形成可调谐QWP,通过电控制液晶的分子指向矢,其工作频率可以在很宽的频率范围内连续调谐。结果表明,带有液晶的石墨烯周期性梯度光栅不仅拓宽了工作带宽,还降低了外部电场。该器件为太赫兹偏振和相位器件的发展迈出了进一步的步伐,有望应用于太赫兹偏振成像、光谱学和通信领域。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验