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Tunable Optical Nanoantennas Incorporating Bowtie Nanoantenna Arrays with Stimuli-Responsive Polymer

机译:结合领结纳米天线阵列与刺激反应性聚合物的可调光纳米天线。

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摘要

We report on a temperature-responsive tunable plasmonic device that incorporates coupled bowtie nanoantenna arrays (BNAs) with a submicron-thick, thermosensitive hydrogel coating. The coupled plasmonic nanoparticles provide an intrinsically higher field enhancement than conventional individual nanoparticles. The favorable scaling of plasmonic dimers at the nanometer scale and ionic diffusion at the submicron scale is leveraged to achieve strong optical resonance and rapid hydrogel response, respectively. We demonstrate that the hydrogel-coated BNAs are able to sense environmental temperature variations. The phase transition of hydrogel leads to 16.2 nm of resonant wavelength shift for the hydrogel-coated BNAs, whereas only 3 nm for the uncoated counterpart. The response time of the device to temperature variations is only 250 ms, due to the small hydrogel thickness at the submicron scale. The demonstration of the ability of the device to tune its optical resonance in response to an environmental stimulus (here, temperature) suggests a possibility of making many other tunable plasmonic devices through the incorporation of coupled plasmonic nanostructures and various environmental-responsive hydrogels.
机译:我们报告了一种温度响应可调等离子设备,该设备将耦合的领结纳米天线阵列(BNA)与亚微米厚的热敏水凝胶涂层结合在一起。偶联的等离激元纳米颗粒比常规的单个纳米颗粒本质上具有更高的场增强。等离子体级二聚体在纳米级的有利缩放和亚微米级的离子扩散被利用来分别实现强的光学共振和快速的水凝胶响应。我们证明了水凝胶涂层BNA能够感知环境温度变化。水凝胶的相变导致水凝胶包覆的BNA的共振波长偏移为16.2 nm,而未包覆的对应物仅为3 nm。由于亚微米级的水凝胶厚度小,该设备对温度变化的响应时间仅为250µms。装置响应于环境刺激(此处为温度)调节其光学共振的能力的证明表明,通过结合耦合的等离子体纳米结构和各种对环境敏感的水凝胶,可以制造许多其他可调等离子体装置。

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