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Self-Calibrated Double Luminescent Thermometers Through Upconverting Nanoparticles

机译:通过上转换纳米粒子自校准的双发光温度计

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摘要

Luminescent nanothermometry uses the light emission from nanostructures for temperature measuring. Non-contact temperature readout opens new possibilities of tracking thermal flows at the sub-micrometer spatial scale, that are altering our understanding of heat-transfer phenomena occurring at living cells, micro electromagnetic machines or integrated electronic circuits, bringing also challenges of calibrating the luminescent nanoparticles for covering diverse temperature ranges. In this work, we report self-calibrated double luminescent thermometers, embedding in a poly(methyl methacrylate) film Er3+- and Tm3+-doped upconverting nanoparticles. The Er3+-based primary thermometer uses the ratio between the integrated intensities of the 2H11/24I15/2 and 4S3/24I15/2 transitions (that follows the Boltzmann equation) to determine the temperature. It is used to calibrate the Tm3+/Er3+ secondary thermometer, which is based on the ratio between the integrated intensities of the 1G43H6 (Tm3+) and the 4S3/24I15/2 (Er3+) transitions, displaying a maximum relative sensitivity of 2.96% K−1 and a minimum temperature uncertainty of 0.07 K. As the Tm3+/Er3+ ratio is calibrated trough the primary thermometer it avoids recurrent calibration procedures whenever the system operates in new experimental conditions.
机译:发光纳米温度计使用纳米结构的发光进行温度测量。非接触式温度读数为在亚微米空间尺度上跟踪热流开辟了新的可能性,这改变了我们对活细胞,微电磁机或集成电路上发生的传热现象的理解,也带来了校准发光的挑战用于覆盖不同温度范围的纳米颗粒。在这项工作中,我们报告了自我校准的双发光温度计,该温度计嵌入了掺有Er 3 + -和Tm 3 + 的上转换纳米粒子的聚(甲基丙烯酸甲酯)薄膜中。基于Er 3 + 的主温度计使用 2 H 11 / < / mo> 2 4 I15 / 2和 4 S 3 / 2 4 I15 / 2转换(遵循Boltzmann方程)以确定温度。用于校准Tm 3 + / Er 3 + 辅助温度计,该温度计基于 1 的积分强度之间的比率 G 4 3 H6(Tm 3 + )和 4 S 3 / 2 4 I15 / 2(Er 3 + )转换,显示最大相对灵敏度为2.96%K -1 ,并且最小温度不确定度为0.07K。由于通过主温度计校准了Tm 3 + / Er 3 + 比率,因此只要系统在新的实验条件下运行,就可以避免重复的校准程序。

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