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Squeezing Terahertz Light into Nanovolumes: Nanoantenna Enhanced Terahertz Spectroscopy (NETS) of Semiconductor Quantum Dots

机译:将太赫兹光压缩成纳米体积:半导体量子点的纳米天线增强太赫兹光谱(NETS)

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摘要

Terahertz spectroscopy has vast potentialities in sensing a broad range of elementary excitations (e.g., collective vibrations of molecules, phonons, excitons, etc.). However, the large wavelength associated with terahertz radiation (about 300 mu m at 1 THz) severely hinders its interaction with nano-objects, such as nanoparticles, nanorods, nanotubes, and large molecules of biological relevance, practically limiting terahertz studies to macroscopic ensembles of these compounds, in the form of thick pellets of crystallized molecules or highly concentrated solutions of nanomaterials. Here we show that chains of terahertz dipole nanoantennas spaced by nanogaps of 20 nm allow retrieving the spectroscopic signature of a monolayer of cadmium selenide quantum dots, a significant portion of the signal arising from the dots located within the antenna nanocavities. A Fano-like interference between the fundamental antenna mode and the phonon resonance of the quantum dots is observed, accompanied by an absorption enhancement factor greater than one million. NETS can find immediate applications in terahertz spectroscopic studies of nanocrystals and molecules at extremely low concentrations. Furthermore, it shows a practicable route toward the characterization of individual nano-objects at these frequencies.
机译:太赫兹光谱法在检测各种基本激发(例如分子,声子,激子等的集体振动)方面具有巨大的潜力。但是,与太赫兹辐射相关的大波长(在1 THz时约为300微米)严重阻碍了它与纳米物体的相互作用,例如纳米粒子,纳米棒,纳米管和具有生物相关性的大分子,实际上将太赫兹研究限制在了这些化合物的形式为结晶分子的厚颗粒或纳米材料的高度浓缩溶液。在这里,我们显示了以20 nm的纳米间隙隔开的太赫兹偶极子纳米天线链可以检索硒化镉量子点单层的光谱特征,该信号的重要部分来自位于天线纳米腔内的点。观察到基本天线模式与量子点的声子共振之间存在类似法诺的干扰,并伴有大于一百万的吸收增强因子。 NETS可以在太低浓度的纳米晶体和分子的太赫兹光谱研究中找到直接的应用。此外,它显示了在这些频率下表征单个纳米物体的实用途径。

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