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Proceedings of The 9th International Multidisciplinary Conference on Optofluidics 2019最新文献

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Non-Hermitian, Topological, and Lorentz Non-reciprocal Photonic Systems 非厄米、拓扑和洛伦兹非互易光子系统
K. Fung
Non-Hermitian, Topological, and Lorentz non-reciprocal photonic resonators have attracted intense attention due to their complexities which are strongly dependent on their spatial and temporal structures. Strongly dispersive materials such as plasmonic and gyromagnetic materials lead to additional difficulties in defining topological bands. In this talk, I will introduce recent progress in my group and discuss the bands and edge modes in these low-symmetry photonic systems. Arrays of plasmonic nanoparticles and gyromagnetic resonators will be used as examples to illustrate the topological and Lorentz non-reciprocal effects.
非厄米、拓扑和洛伦兹非互易光子谐振腔由于其高度依赖于其时空结构的复杂性而引起了人们的广泛关注。强色散材料,如等离子体和回旋磁材料,在定义拓扑带时带来了额外的困难。在这次演讲中,我将介绍我的小组的最新进展,并讨论这些低对称性光子系统的能带和边缘模式。等离子体纳米粒子阵列和回旋磁谐振器将作为例子来说明拓扑和洛伦兹非互反效应。
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引用次数: 0
Diatomic metasurface for multi-functional light field manipulation 用于多功能光场操作的双原子超表面
Xiangping Li, Zi-lan Deng
Metasurface composed of arrays of subwavelength scale optical antennas emerges as a new paradigm for light field manipulation and unpins various flat optical diffractive devices. Based on their phase modulation mechanisms, the reported metasurfaces can be classified into three categories: resonance phase, propagation phase and geometric phase. In this talk, we propose a new metasurface design allowing to fully control the phase, amplitude, polarization and frequency of visible light simultaneously. This is achieved through a generalized geometric phase mechanism which combines the detour phase and the Pancharatnam–Berry phase. Utilizing a diatomic design strategy, the in-plane displacements and orientations of two identical meta-atom in each unit meta-molecules are fully exploited enabling light field manipulation at multi-dimensions. Leveraging this appealing feature, we experimentally demonstrated the broadband vectorial holographic images with spatially-varying polarization states, dual-way polarization switching functionalities, and full-color complex-amplitude vectorial holograms. Our work may suggest a new route to achromatic diffractive elements, polarization optics and ultra-secure anti-counterfeiting.
由亚波长尺度光学天线阵列组成的超表面是光场操纵的新范式,是各种平面光学衍射器件的重要组成部分。根据其相位调制机制,可以将所报道的超表面分为共振相位、传播相位和几何相位三种类型。在这次演讲中,我们提出了一种新的超表面设计,可以同时完全控制可见光的相位,振幅,偏振和频率。这是通过一个广义的几何相位机制来实现的,该机制结合了绕道相位和Pancharatnam-Berry相位。利用双原子设计策略,充分利用每个单元元分子中两个相同元原子的平面内位移和方向,实现了多维光场操纵。利用这一吸引人的特性,我们实验展示了具有空间变化偏振状态的宽带矢量全息图像,双向偏振开关功能和全彩复振幅矢量全息图。我们的工作可能为消色差衍射元件、偏振光学和超安全防伪提供一条新的途径。
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引用次数: 0
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Proceedings of The 9th International Multidisciplinary Conference on Optofluidics 2019
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