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On-chip discrimination of orbital angular momentum of light with plasmonic nanoslits

机译:轨道角动量的芯片上的歧视光与电浆nanoslits

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摘要

The orbital angular momentum (OAM) of light can be taken as an independent and orthogonal degree of freedom for multiplexing in an optical communication system, potentially improving the system capacity to hundreds of Tbits per second. The high compactness and miniaturization of devices required for optical communications impose strict requirements on discriminating OAM modes of light at a small (micro-or even nano-meter) scale for demultiplexing; these requirements represent a challenge for traditional OAM sorting strategies. Here, we propose a semi-ring plasmonic nanoslit to directly and spatially sort various OAM modes of light into similar to 120 nm-spaced mode intervals on the metallic surface. Making use of the constructive interference of a helical-phase modulated surface wave excited by a vortex beam, this on-chip interval can be stably demonstrated both theoretically and experimentally with a quasi-linear dependence on the plasmonic wavelength. Furthermore, its immunity to semi-ring geometry (i.e., the radius and number of rings) is verified by simulations. As a result, OAM discriminating is guaranteed by this stable sorting function. This technique shows a viable solution to discriminate the OAM of light at the nano-scale and might lead to broad benefits across the fields of optical communications, plasmonic physics and singular optics.
机译:轨道角动量(OAM)的光作为一个独立的和正交程度的多路复用的光的自由通信系统,可能会改善系统每秒数百Tbits的能力。的高密实度和小型化光通信所需设备对歧视OAM实施严格的要求小(或微观模式的光纳米)规模多路分解;要求代表的一个挑战传统的OAM排序策略。提出一个semi-ring电浆nanoslit直接和空间的各种OAM模式光成类似于120 nm-spaced模式时间间隔在金属表面。helical-phase的相长干涉涡旋光束调制表面波兴奋,这个芯片上的间隔可以稳定了从理论上和实验上准线性依赖电浆波长。semi-ring几何(例如,半径和数量环)验证了模拟。因此,OAM歧视是可以保证的稳定的排序功能。可行的解决歧视OAM的光在纳米级,可能导致广泛在光学领域的好处通信、电浆物理和奇异光学。

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