论文标题

通过紫外线和可见等离子纳米焦焦的光色素材料的纳米级光学切换

Nanoscale optical switching of photochromic material by ultraviolet and visible plasmon nanofocusing

论文作者

Umakoshi, Takayuki, Arata, Hiroshi, Verma, Prabhat

论文摘要

电子性质的光控制对于将来的电动设备至关重要。由于光的波浪性质,操纵这种特性的空间体积中的微观限制。但是,降低音量的规模是极高的需求。在这项研究中,我们证明了有机电源中纳米空间体积内的光学切换。光色素材料(例如日二乙烯衍生物)分别在紫外线(UV)和可见光上表现出半导体和绝缘性能,这对于光学开关和记忆力很有希望。为了控制纳米级的可见光和紫外线之间的波长,我们采用了等离子体纳米焦点,从而在宽频率范围内通过聚焦传播等离子来创建金属锥形结构的顶端的纳米源。我们利用了铝制锥形结构,并实现了纳米级可见光和紫外线之间的原位波长控制。使用这种方法,证明了两种日lirylyhene的状态之间的纳米级光学切换。至少在没有降解的情况下,确认了至少九个周期的切换性能。该演示将迈出重要的一步,迈向下一代纳米级光电设备,并刺激宽带等离子体纳米焦点的独特概念,刺激了多样化的科学领域。

Optical control of electronic properties is essential for future electric devices. Manipulating such properties has been limited to the microscale in spatial volume due to the wave nature of light; however, scaling down the volume is in extremely high demand. In this study, we demonstrate optical switching within a nanometric spatial volume in an organic electric material. Photochromic materials such as diarylethene derivatives exhibit semiconducting and insulating properties on ultraviolet (UV) and visible light, respectively, which are promising for optical switching and memory. To control the wavelength between visible and UV light at the nanoscale, we employed plasmon nanofocusing, which allows the creation of a nanolight source at the apex of a metallic tapered structure over a broad frequency range by focusing of propagating plasmons. We utilized an aluminum tapered structure and realized in-situ wavelength control between visible and UV light at the nanoscale. Using this method, nanoscale optical switching between the two states of diarylethene was demonstrated. The switching performance was confirmed for at least nine cycles without degradation. This demonstration would make a significant step forward toward next-generation nanoscale optoelectronic devices and stimulate diverse scientific fields owing to the unique concept of broadband plasmon nanofocusing.

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