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Optically tunable microresonator using an azobenzene monolayer

机译:光学可调谐微生物使用偶氮苯单层

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Photoswitchable organic molecules can undergo reversible structural changes with an external light stimulus. These optically controlled molecules have been used in the development of “smart” polymers, optical writing of grating films, and even controllable in vivo drug release. Being the simplest class of photoswitches in terms of structure, azobenzenes have become the most ubiquitous, well-characterized, and implemented organic molecular switches. Given their predictable response, they are ideally suited to create an all-optically controlled switch. However, fabricating a monolithic optical device comprised solely of azobenzene while maintaining the photoswitching functionality is challenging. In this work, we combine integrated photonics with optically switchable organic molecules to create an optically controlled integrated device. A silica toroidal resonant cavity is functionalized with a monolayer of an azobenzene derivative. After functionalization, the loaded cavity Q is above 10 5 . When 450 nm light is coupled into cavity resonance, the azobenzene isomerizes from trans isomer to cis isomer, inducing a refractive index change. Because the resonant wavelength of the cavity is governed by the index, the resonant wavelength changes in parallel. At a probe wavelength of 1300 nm, the wavelength shift is determined by the duration and intensity of the 450 nm light and the density of azobenzene functional groups on the device surface, providing multiple control mechanisms. Using this photoswitchable device, resonance frequency tuning as far as 60% of the cavity’s free spectral range in the near-IR is demonstrated. The kinetics of the tuning are in agreement with spectroscopic and ellipsometry measurements coupled with finite element method calculations.
机译:光度吸引有机分子可以通过外部光刺激进行可逆的结构变化。这些光学控制的分子已被用于开发“智能”聚合物,光栅膜的光学写入,甚至可控制体内药物释放。作为结构中最简单的照片,偶氮苯已成为最无处不在,其特征,并实现的有机分子开关。鉴于其可预测的响应,它们非常适合创建全光控开关。然而,在保持光学开养功能的同时,制造仅包含偶氮苯的单片光学装置是具有挑战性的。在这项工作中,我们将集成光子与光学可切换的有机分子组合以产生光控集成装置。用偶氮苯衍生物的单层官能化硅胶环形谐振腔。在功能化之后,负载腔Q高于10 5。当450nm光耦合到腔共振时,偶氮苯从反式异构体异构化,诱导折射率变化。因为腔的谐振波长被索引控制,所以谐振波长并联变化。在探针波长为1300nm,波长移位由450nm光的持续时间和强度和器件表面上的偶氮苯官能团的密度确定,提供多种控制机构。使用该光学开关的设备,对近IR中的腔内自由谱范围的谐振频率调谐均已进行说明。调谐的动力学与与有限元方法计算相结合的光谱和椭圆测量测量值。

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