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首页> 外文期刊>Advanced Optical Materials >All-Optical Polarization-Controlled Nanosensor Switch Based on Guided-Wave Surface Plasmon Resonance via Molecular Overtone Excitations in the Near-Infrared
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All-Optical Polarization-Controlled Nanosensor Switch Based on Guided-Wave Surface Plasmon Resonance via Molecular Overtone Excitations in the Near-Infrared

机译:基于引导波表面等离子体谐振的全光学偏振控制纳米传感器开关通过近红外线分子泛谐射刺激

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摘要

Semiconductor transistors for sensors are considered the most widely manufactured device in history. Being invented to switch electronic signals they revolutionized electronics and paved the way for smaller and cheaper sensors, radios, calculators, and computers. However, electric switches are hampered by damage from very brief electrical and thermal effects or electromagnetic interference. For this reason, modern communication systems devote considerable attention to all-optical switches, yet, the state-of-the-art switching of photonic signals is fulfilled electronically. All-optical switching allows light-controls-light through unique optical effects. Here, an all-optical sensor switch, engineered to operate at telecommunication wavelengths, caused by the excitation of molecular overtones in a hybrid plasmonic-dielectric configuration is demonstrated. This configuration possesses a unique property: to control the sensor switch with the polarization state of light for two different plasmonic modes to co-exist while exciting a single overtone. Control of the sensor switch is realized by tuning the polarization of incident light from transverse magnetic (switch-on) to transverse electric (switch-off). This switch provides a miniature, affordable, and fast chip-scale polarization-activated sensor device for a wide range of applications from optics communication to all-optical computing and sensing.
机译:用于传感器的半导体晶体管被认为是历史上最广泛制造的装置。被发明以切换它们旋转电子的电子信号,并为更小和更便宜的传感器,无线电,计算器和计算机铺平道路。但是,电动开关受到非常短暂的电气和热效应或电磁干扰的损坏。因此,现代通信系统投入了相当大的关注全光开关,然而,电子方式实现光子信号的最新切换。全光切换允许通过独特的光学效果轻控制光。这里,通过在混合等离子体电介质构造中,由电信波长进行操作以在电信波长下操作的全光学传感器开关。这种配置具有独特的特性:控制传感器开关与两个不同等离子体模式的光偏振光的偏振状态,同时激发单个泛音。通过从横向磁性(接通)到横向电气(开关)的入射光的偏振来实现传感器开关的控制。该开关提供了一种微型,实惠,快速的芯片级偏振激活的传感器装置,用于广泛的应用,从光学通信到全光计算和感测。

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