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Double NIR laser stimulation and enhancing the thermal sensitivity of Er3+/Tm3+/Nd3+ doped multilayer core-shell nanoparticles

机译:双胞胎激光刺激和增强ER3 + / TM3 + / ND3 +掺杂多层核心壳纳米粒子的热敏灵敏度

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Non-contact thermal sensors are important devices to study cellular processes and monitor temperature in vivo. Herein, a novel highly sensitive nanothermometer based on NaYF4:Yb, Er@ NaYF4@NaYF4:Yb, Tm@NaYF4:Nd (denoted as Er@Y@Tm@Nd) was prepared by a facile solvothermal method. When excited by the near-infrared (NIR) light of 808 and 980 nm, the as-prepared Er@Y@Tm@Nd nanoparticles could emit both blue and green light, respectively, since the lanthanide cations responsible for these emissions are gathered inside this nanostructure. The green and blue light intensity ratio exhibits obvious temperature dependence in the range of the physiological temperature. Additionally, the fluorescence intensity of Er3+ and Tm3+ are also greatly enhanced due to the multilayer structure that implies avoiding the Er3+ and Tm3+ energy cross-relaxation by introduction of a NaYF4 wall between them. The as-prepared core-shell-shell-shell structure with Er3+ and Tm3+ in different layers improves dozens of times of the thermal sensitivity based on the non-thermal coupling levels of the probe: the maximum values for the sensitivity are 2.95% K-1 (IEr-521/ITm-450) and 6.30% K-1 (ITm-474/IEr-541) when excited by 980 and 808 nm laser sources, respectively. These values are well above those previously reported (<0.7% K-1), indicating that the prepared nanostructures are temperature sensors with excellent thermal sensitivity and sensitive to NIR wavelength excitation that makes them highly preferred for thermal detection.
机译:非接触式热传感器是研究蜂窝工艺和体内监测温度的重要装置。在此,基于Nayf4的新型高敏感纳米计数计:Yb,ER @ Nayf4 @ Nayf4:Yb,TM @ NayF4:Nd(表示为ER @ Y @ TM @ Nd),通过容易的溶液方法制备。当由808和980nm的近红外(NIR)光激发时,AS制备的ER @ Y @ TM @ ND纳米颗粒分别可以分别发出蓝色和绿光,因为负责这些排放的镧系元素内部这个纳米结构。绿色和蓝色光强度比在生理温度范围内具有明显的温度依赖性。另外,由于多层结构,ER3 +和TM3 +的荧光强度也大大提高,这意味着通过引入它们之间的Nayf4壁来避免ER3 +和TM3 +能量交叉放松。具有ER3 +和TM3 +的AS制备的核 - 壳 - 壳 - 壳结构在不同层中,基于探针的非热耦合水平改善了多种热敏率:敏感性的最大值为2.95%K- 1(IER-521 / ITM-450)和6.30%K-1(ITM-474 / IER-541)分别在980和808nm激光源激发时。这些值远高于先前报道的(<0.7%K-1)的值,表明制备的纳米结构是具有优异的热灵敏度和对NIR波长激励敏感的温度传感器,使它们非常优选热检测。

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