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794 nm excited core–shell upconversion nanoparticles for optical temperature sensing

机译:794 NM激发核 - 壳壳上转换纳米粒子用于光学温度传感

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Hexagonal core–shell NaYF _(4) upconversion nanoparticles (UNCPs) based on Nd ~(3+) sensitization for optical temperature sensing were successfully synthesized by a solvothermal method using oleic acid and octadecene as coordinating solvents. Compared to the conventional Yb ~(3+) sensitized UNCPs, the usage of Nd ~(3+) as the sensitizers can shift the excitation wavelength from 975 nm to 794 nm where the optical absorption of water decreased dramatically, and thus make UNCPs more suitable for biological application. The upconversion (UC) luminescence intensity of the 794 nm-excitation UNCPs is comparable to that of the conventional 975 nm excitation, showing that Nd ~(3+) sensitized UNCPs are efficient. The efficiently successive Nd ~(3+) → Yb ~(3+) → Er ~(3+) energy transfer processes in this UNCP were demonstrated by excitation spectra and time-resolved spectra. The temperature dependence of the fluorescence intensity ratios (FIR) for the two green emissions (525 nm and 545 nm) from the thermally coupled levels of Er ~(3+) was studied in the temperature range from 25 to 60 °C under 808 nm excitation, and the temperature mapping of a device was acquired according to this technique. These indicate that Nd ~(3+) sensitized core–shell UNCPs are promising candidates for application in optical temperature sensors.
机译:基于Nd〜(3+)的六边形核 - 壳Nayf _(4)上转化纳米颗粒(UNCA)通过使用油酸和十八烯作为配位溶剂成功地通过溶剂热法成功地合成了光学温度传感的敏化。与传统的YB〜(3+)敏化的UNCA相比,作为敏感剂的ND〜(3+)的使用可以将激发波长从975nm变为794nm,其中水的光学吸收急剧下降,从而使没有更多适用于生物学应用。 794nm-励磁UNCAP的上变化(UC)发光强度与传统的975nm激发的增强率(UC)发光强度相当,显示Nd〜(3+)敏化的基因件是有效的。通过激发光谱和时间分辨光谱证明了该UNFP中的有效连续的Nd〜(3+)→Yb〜(3+)→ER〜(3+)能量转移过程。在808nm下的温度范围内研究了来自ER〜(3+)的热偶联水平的两个绿色排放(525nm和545nm)的荧光强度比(525nm和545nm)的温度依赖性激发,并且根据该技术获取了装置的温度映射。这些表明,ND〜(3+)敏化的核心壳UNIP是在光学温度传感器中应用的承诺候选者。

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