具有超表面的复合双折射波片(会议报告)

Shaun Lung, Kai Wang, K. Z. Kamali, M. Rahmani, D. Neshev, A. Sukhorukov
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引用次数: 0

摘要

用于偏振控制的传统波片基于双折射材料或具有实值相位的纳米结构[1,2]。最近,人们提出了一种新的复值双折射,通过特别引入偏振敏感损耗或增益,扩展了实值双折射的概念。然而,这种理论方法是基于一种复杂的具有损耗和增益的超材料,这种超材料仍然无法制造。我们开发并实验证明了一种实用的方法来优化实现具有超表面的复杂双折射波片。我们设计了包含纳米谐振器对的介电超表面,从而产生了工程偏振相关衍射,从而有效地引入了最低必要量的损耗,以实现所需的非常规极化转换。我们制作了这样的超表面,表征了各种偏振态的传输,并展示了两个代表性的应用。首先,我们证明了超表面可以将一对几乎相同的偏振态转化为正交偏振态,这可以用于提高偏振检测灵敏度和量子态识别。相反,实值双折射不能改变偏振态对之间的角度。其次,我们开发了一种与非常规相对相位实现偏振耦合的超表面,它可以强烈地影响光子的量子干涉并控制它们的相干衰减。复合双折射超表面可以促进光束和量子光子态的新型偏振操纵和测量陈晓明,陈晓明,陈晓明,等。纳米材料与纳米材料,2015,37 (6)陈志强等,光子学报,30 (5):649 - 649A. Cerjan和S. H. Fan,物理学家。Rev. Lett. 118,253902(2017)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Complex-birefringent waveplates with metasurfaces (Conference Presentation)
Conventional wave plates for polarization control are based on birefringent materials or nanostructures that assign real-valued phases [1,2]. Recently, a new regime of complex-valued birefringence was suggested [3], extending the notion of real-valued birefringence through the specially introduced polarization-sensitive loss or gain. However, this theoretical approach was based on a complicated metamaterial with loss and gain, which remains inaccessible for fabrication. We develop and experimentally demonstrate a practical approach for optimal implementation of complex-birefringent wave plates with metasurfaces. We design dielectric metasurfaces incorporating pairs of nanoresonators, giving rise to engineered polarization-dependent diffraction, which effectively introduces only the minimally necessary amount of loss to achieve the desired unconventional polarization transformation. We fabricate such metasurfaces, characterize the transmission of various polarization states, and demonstrate two representative applications. First, we show that a metasurface can transforms a pair of nearly identical polarization states into orthogonally polarized ones, which can be used for improving polarization detection sensitivity and quantum state discrimination. In contrast, real-valued birefringence cannot change the angle between pairs of polarization states. Second, we develop a metasurface implementing polarization coupling with an unconventional relative phase, which can strongly affect the quantum interference of photons and control their coherent attenuation. The complex-birefringent metasurfaces can facilitate novel types of polarization manipulation and measurement with optical beams and quantum photon states. [1] A. Arbabi et al., Nat. Nanotechnol. 10, 937 (2015). [2] S. Kruk et al., APL Photonics 1, 030801 (2016). [3] A. Cerjan and S. H. Fan, Phys. Rev. Lett. 118, 253902 (2017).
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