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Integrated all-optical logic discriminators based on plasmonic bandgap engineering

机译:基于等离子带隙工程的集成全光逻辑鉴别器

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摘要

Optical computing uses photons as information carriers, opening up the possibility for ultrahigh-speed and ultrawide-band information processing. Integrated all-optical logic devices are indispensible core components of optical computing systems. However, up to now, little experimental progress has been made in nanoscale all-optical logic discriminators, which have the function of discriminating and encoding incident light signals according to wavelength. Here, we report a strategy to realize a nanoscale all-optical logic discriminator based on plasmonic bandgap engineering in a planar plasmonic microstructure. Light signals falling within different operating wavelength ranges are differentiated and endowed with different logic state encodings. Compared with values previously reported, the operating bandwidth is enlarged by one order of magnitude. Also the SPP light source is integrated with the logic device while retaining its ultracompact size. This opens up a way to construct on-chip all-optical information processors and artificial intelligence systems.
机译:光学计算使用光子作为信息载体,为超高速和超宽带信息处理开辟了可能性。集成的全光学逻辑设备是光学计算系统必不可少的核心组件。然而,到目前为止,在纳米级全光逻辑鉴别器上,其具有根据波长区分和编码入射光信号的功能的实验进展甚微。在这里,我们报告了一种在平面等离子微结构中基于等离子带隙工程实现纳米级全光学逻辑鉴别器的策略。落在不同工作波长范围内的光信号将被区分并赋予不同的逻辑状态编码。与先前报告的值相比,工作带宽增加了一个数量级。此外,SPP光源与逻辑器件集成在一起,同时保持其超紧凑的尺寸。这为构建片上全光信息处理器和人工智能系统开辟了道路。

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