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Optical vortex mode generation by nanoarrays with a tailored geometry

机译:通过具有定制几何形状的纳米阵列产生光学涡旋模

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Light generated with orbital angular momentum, commonly known as an optical vortex, is widely achieved by modifying the phase structure of a conventional laser beam through the utilization of a suitable optical element. In recent research, a process has been introduced that can produce electromagnetic radiation with a helical wave-front directly from a source. The chirally driven optical emission originates from a hierarchy of tailored nanoscale chromophore arrays arranged with a specific propeller-like geometry and symmetry. In particular, a nanoarray composed of n particles requires each component to be held in a configuration with a rotation and associated phase shift of 2π radians with respect to its neighbor. Following initial electronic excitation, each such array is capable of supporting delocalized doubly degenerate excitons, whose azimuthal phase progression is responsible for the helical wave-front. Under identified conditions, the relaxation of the electronically-excited nanoarray produces structured light in a spontaneous manner. Nanoarrays of escalating order, i.e. those containing an increasing number of components, enable access to a set of topological charges of higher order. Practical considerations for the development of this technique are discussed, and potential new applications are identified.
机译:通过利用合适的光学元件来改变常规激光束的相结构,可以广泛地获得以轨道角动量产生的光,通常称为光学涡旋。在最近的研究中,已经引入了一种可以直接从光源产生具有螺旋波前的电磁辐射的方法。手性驱动的光发射来自以特定的螺旋桨状几何形状和对称性排列的定制纳米级生色团阵列的层次结构。特别地,由n个粒子组成的纳米阵列要求将每个组件保持在相对于其邻居具有2π/ n弧度的旋转和相关相移的配置中。在最初的电子激发之后,每个这样的阵列都能够支持离域的双简并激子,其激元相变是螺旋波前的原因。在确定的条件下,电子激发纳米阵列的弛豫以自发的方式产生结构化的光。逐步升级的纳米阵列,即包含越来越多的组分的纳米阵列,使得能够获得一组更高阶的拓扑电荷。讨论了开发此技术的实际考虑因素,并确定了潜在的新应用。

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