Active tuning of all-dielectric metasurfaces (Conference Presentation)

I. Staude
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引用次数: 0

Abstract

Optical metasurfaces composed of designed Mie-resonant semiconductor nanoparticles arranged in a plane offer unique opportunities for controlling the properties of light fields [1]. Such metasurfaces can impose a spatially variant phase shift onto an incident light field, thereby providing control over its wave front with high transmittance efficiency. They can also e.g. act as polarizing optical elements, exhibit tailored nonlinear optical properties, or manipulate spontaneous emission processes of nanoscale emitters integrated in the metasurface architecture. However, the optical response of most semiconductor metasurfaces realized so far was permanently encoded into the metasurface structure during fabrication. Recently, a growing amount of research is concentrating on obtaining dynamic control of their optical response, with the aim of creating metasurfaces with functionalities that can be tuned, switched or programmed on demand. This talk will provide an overview of our recent advances in actively tunable Mie-resonant semiconductor metasurfaces. In particular, by integrating silicon metasurfaces into a liquid-crystal (LC) cell, we can tune their linear-optical transmittance and reflectance spectra by application of a voltage [2]. In our work, we utilize a LC photoalignment material [3] during the assembly of the LC metasurfaces, leading to a drastic improvement of the tuning performance and reproducibility. Based on this method, we demonstrate electrical tuning of LC-infiltrated dielectric metasurfaces at near-infrared and visible wavelengths. We show that these metasurfaces can be tuned into and out of the so-called Huygens’ regime of spectrally overlapping electric and magnetic dipolar resonances, which is characterized by near-unity resonant transmission, by application of an external voltage. In particular, we demonstrate tuning of the metasurface transmission from nearly opaque to nearly transparent at 1070 nm. Furthermore, making use of the strong modulation of the metasurface response in combination with patterned electrodes, we experimentally demonstrate a transparent metasurface display device operating in the visible spectral range. However, while the integration of silicon metasurfaces into nematic LC cells represents an efficient and versatile tuning approach showing large resonance shifts and strong tuning contrast, the switching times that can be achieved based on this approach are limited. Thus, as an alternative tuning mechanism allowing for ultrafast operation, we consider the transient changes of the optical properties of semiconductor materials when optically pumped by femtosecond laser pulses. These changes can lead to pronounced changes of the resonance condition for semiconductor metasurfaces at an ultrafast time scale. Our recent progress in ultrafast switching and tuning of semiconductor metasurfaces based on different material platforms and different physical mechanisms occurring at an ultrafast time scale will be discussed [4,5]. Furthermore, strategies to translate ultrafast tuning of metasurface resonances to ultrafast control of more complex metasurface functionalities such as wavefront shaping will be outlined. [1] I. Staude & J. Schilling, Nature Photon. 11, 274 (2017). [2] A. Komar et al., Appl. Phys. Lett. 110(7), 071109 (2017). [3] I. I. Rushnova et al., Opt. Commun. 413, 179 (2018). [4] M. R. Shcherbakov et al., Nano Lett. 15, 6985 (2015). [5] M. R. Shcherbakov et al., Nat. Commun. 8, 17 (2017).
全介质超表面的主动调谐(会议报告)
由设计成平面排列的mie谐振半导体纳米粒子组成的光学超表面为控制光场的性质提供了独特的机会[1]。这种超表面可以对入射光场施加空间变化的相移,从而提供对其波前的高透射效率控制。它们还可以作为偏振光学元件,表现出定制的非线性光学特性,或操纵集成在超表面结构中的纳米级发射器的自发发射过程。然而,迄今为止实现的大多数半导体超表面的光学响应在制造过程中被永久地编码到超表面结构中。最近,越来越多的研究集中在获得对其光学响应的动态控制上,目的是创建具有可按需调谐、切换或编程功能的超表面。本讲座将概述我们在主动可调谐微波谐振半导体元表面方面的最新进展。特别是,通过将硅超表面集成到液晶(LC)电池中,我们可以通过施加电压来调整其线性光学透射率和反射光谱[2]。在我们的工作中,我们在LC超表面的组装过程中使用了LC光对准材料[3],从而大大提高了调谐性能和再现性。在此基础上,我们演示了lc浸润介质超表面在近红外和可见光波段的电调谐。我们表明,这些超表面可以通过施加外部电压,进入或退出所谓的惠更斯谱重叠电和磁偶极共振,其特征是近统一谐振传输。特别是,我们展示了在1070 nm的超表面透射从几乎不透明到几乎透明的调谐。此外,利用超表面响应的强调制与图案电极相结合,我们实验证明了在可见光谱范围内工作的透明超表面显示装置。然而,虽然将硅超表面集成到向列LC单元中代表了一种高效和通用的调谐方法,显示出大的共振位移和强调谐对比度,但基于这种方法可以实现的开关时间是有限的。因此,作为一种允许超快操作的替代调谐机制,我们考虑了当飞秒激光脉冲光泵浦时半导体材料的光学特性的瞬态变化。这些变化会导致半导体超表面在超快时间尺度上的共振条件发生显著变化。我们在超快时间尺度下基于不同材料平台和不同物理机制的半导体超表面的超快开关和调谐方面的最新进展将被讨论[4,5]。此外,将超表面共振的超快调谐转化为更复杂的超表面功能(如波前整形)的超快控制的策略将被概述。[1]李晓明,李晓明,李晓明,等。光子学报,2016,37 (2).[2]A. Komar等人,苹果。理论物理。科学通报,2011 (7),2016 (3).[3]李建军,刘建军,刘建军,等。生物医学工程学报,2016,33 (4).[4]王晓明,王晓明,王晓明,等。生物医学工程学报,2015,39 (5).[5]M. R. Shcherbakov et al.,学报,8,17(2017)。
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