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A Fusion-Spliced Near-Field Optical Fiber Probe Using Photonic Crystal Fiber for Nanoscale Thermometry Based on Fluorescence-Lifetime Measurement of Quantum Dots

机译:基于量子点荧光寿命测量的光子晶体光纤熔融拼接近场纳米探针。

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摘要

We have developed a novel nanoscale temperature-measurement method using fluorescence in the near-field called Fluorescence Near-field Optics Thermal Nanoscopy (Fluor-NOTN). Fluor-NOTN enables the temperature distributions of nanoscale materials to be measured in vivo/in situ. The proposed method measures temperature by detecting the temperature dependent fluorescence lifetimes of Cd/Se Quantum Dots (QDs). For a high-sensitivity temperature measurement, the auto-fluorescence generated from a fiber probe should be reduced. In order to decrease the noise, we have fabricated a novel near-field optical-fiber probe by fusion-splicing a photonic crystal fiber (PCF) and a conventional single-mode fiber (SMF). The validity of the novel fiber probe was assessed experimentally by evaluating the auto-fluorescence spectra of the PCF. Due to the decrease of auto-fluorescence, a six- to ten-fold increase of S/N in the near-field fluorescence lifetime detection was achieved with the newly fabricated fusion-spliced near-field optical fiber probe. Additionally, the near-field fluorescence lifetime of the quantum dots was successfully measured by the fabricated fusion-spliced near-field optical fiber probe at room temperature, and was estimated to be 10.0 ns.
机译:我们开发了一种在近场使用荧光的新型纳米级温度测量方法,称为荧光近场光学热纳米技术(Fluor-NOTN)。 Fluor-NOTN能够在体内/原位测量纳米级材料的温度分布。所提出的方法通过检测Cd / Se量子点(QDs)的温度依赖性荧光寿命来测量温度。对于高灵敏度温度测量,应减少由光纤探针产生的自发荧光。为了降低噪声,我们通过将光子晶体光纤(PCF)和传统的单模光纤(SMF)熔接在一起,制造了一种新型的近场光纤探头。通过评估PCF的自发荧光光谱,通过实验评估了新型纤维探针的有效性。由于自发荧光的减少,使用新制造的熔接近场光纤探头实现了近场荧光寿命检测中信噪比的六至十倍增长。另外,通过制造的熔接近场光纤探针在室温下成功地测量了量子点的近场荧光寿命,估计为10.0ns。

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