材料科学
光致发光
纳米颗粒
灵敏度(控制系统)
能量转移
分析化学(期刊)
荧光
光电子学
强度(物理)
温度测量
联轴节(管道)
发光
纳米技术
活化能
能量(信号处理)
共振感应耦合
作者
Um‐e Kalsoom,Sarika Chaudhry,Jiaqing Guo,Abida Parveen,yueshu feng,Liwei Liu
标识
DOI:10.1002/adom.202501740
摘要
Abstract The study reveals that these nanoparticles exhibit highly tunable photoluminescence (PL), with distinct blue, red, and near‐infrared emissions that are highly sensitive to temperature changes. For the first time, the temperature‐dependent characteristics of PL emissions for optical thermometry behavior among 300–500 K for particular nanoparticles are also investigated. The temperature‐dependent fluorescence intensity ratio (FIR) technique, leveraging phonon‐mediated apparent temperature‐dependent coupling among Tm 3+ states, is employed to calculate the absolute sensitivity (S a ) and relative sensitivity (S r ) of particular nanoparticles. The results indicate high S a values of up to 0.0108 K −1 for sample A and 0.0017 K −1 for sample B across the given temperature range. Sample A exhibits a higher S r of 0.0122%K −1 at low temperatures, while decreasing to 0.0046%K −1 at higher temperatures, while sample B maintains a relatively consistent value over the same temperature range. These results highlight the potential of the synthesized nanoparticles as an effective optical thermometric probe. The Yb 3+ concentration directly modulates energy transfer efficiency and temperature sensitivity by influencing both the rate of energy transfer to Tm 3+ and the extent of nonradiative losses. Optimizing Yb 3+ content is thus crucial for achieving high sensitivity and stability in PL‐based optical thermometry, positioning Yb 3+ /Tm 3+ co‐doped K 0.3 Bi 0.7 F 2.4 nanoparticles as promising candidates for advanced noncontact temperature sensing applications.
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