Upconverting nanoparticles as primary thermometers and power sensors

J. Martins, A. Skripka, C. Brites, A. Benayas, R. Ferreira, F. Vetrone, L. Carlos
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引用次数: 3

Abstract

Luminescence thermometry is a spectroscopic technique for remote temperature detection based on the thermal dependence of the luminescence of phosphors, presenting numerous applications ranging from biosciences to engineering. In this work, we use the Er3+ emission of the NaGdF4/NaGdF4:Yb3+,Er3+/NaGdF4 upconverting nanoparticles upon 980 nm laser excitation to determine simultaneously the absolute temperature and the excitation power density. The Er3+ 2H11/2→4I15/2 and 4S3/2→4I15/2 emission bands, which are commonly used for thermometric purposes, overlap with the 2H9/2 →4I13/2 emission band, which can lead to erroneous temperature readout. Applying the concept of luminescent primary thermometry to resolve the overlapping Er3+ transitions, a dual nanosensor synchronously measuring the temperature and the delivered laser pump power is successfully realized holding promising applications in laser-supported thermal therapies.
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上转换纳米粒子作为主要的温度计和功率传感器
发光测温是一种基于磷光体发光的热依赖性的远程温度检测光谱技术,具有从生物科学到工程的众多应用。在这项工作中,我们使用NaGdF4/NaGdF4:Yb3+,Er3+/NaGdF4上转换纳米颗粒在980nm激光激发下的Er3+发射来同时确定绝对温度和激发功率密度。Er3+2H11/2→4I15/2和4S3/2→4I15/2发射波段,通常用于测温目的,与2H9/2重叠→4I13/2发射带,这可能导致错误的温度读数。应用发光初级测温的概念来解决重叠的Er3+跃迁,成功实现了同步测量温度和输送的激光泵浦功率的双纳米传感器,在激光支持的热疗中具有很好的应用前景。
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