M. Szymczak, D. Szymański, M. Piasecki, M. Brik and L. Marciniak*,
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Tests conducted on two representative phosphors, Ba<sub>2</sub>LaNbO<sub>6</sub>:1%Mn<sup>4+</sup> and Ca<sub>2</sub>LaNbO<sub>6</sub>:1%Mn<sup>4+</sup>, demonstrate that the proposed method not only enables thermal imaging but also achieves substantially higher relative sensitivity, reaching <i>S</i><sub>R</sub> = 17.1% K<sup>–1</sup> for Ba<sub>2</sub>LaNbO<sub>6</sub>:1%Mn<sup>4+</sup> and <i>S</i><sub>R</sub> = 9.4% K<sup>–1</sup> for Ca<sub>2</sub>LaNbO<sub>6</sub>:1%Mn<sup>4+</sup>, compared to the conventional lifetime-based approach (<i>S</i><sub>R</sub> = 4.2% K<sup>–1</sup> for Ba<sub>2</sub>LaNbO<sub>6</sub>:1%Mn<sup>4+</sup> and <i>S</i><sub>R</sub> = 1.2% K<sup>–1</sup> for Ca<sub>2</sub>LaNbO<sub>6</sub>:1%Mn<sup>4+</sup>). Furthermore, the careful selection of gate lengths allows optimization of the thermometric performance of the proposed luminescent thermometers. This approach enables expansion of the thermal operating range at the cost of relative sensitivity, providing versatility to adapt the thermometer for specific applications.</p>","PeriodicalId":62,"journal":{"name":"The Journal of Physical Chemistry Letters","volume":"16 24","pages":"5960–5970 5960–5970"},"PeriodicalIF":4.6000,"publicationDate":"2025-06-06","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://pubs.acs.org/doi/epdf/10.1021/acs.jpclett.5c01265","citationCount":"0","resultStr":"{\"title\":\"Luminescence Thermometry Based on Time Gates: Highly Sensitive Approach for Real-Time Sensing and Imaging\",\"authors\":\"M. Szymczak, D. Szymański, M. Piasecki, M. Brik and L. Marciniak*, \",\"doi\":\"10.1021/acs.jpclett.5c0126510.1021/acs.jpclett.5c01265\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Undoubtedly, one of the most significant advantages of luminescence thermometry is its ability to be used not only for spot temperature measurements but also for imaging temperature changes. Among the commonly proposed approaches, luminescence thermometry based on luminescence kinetics holds particular promise. However, most thermometric studies rely on the analysis of luminescence decay profiles, a method that significantly hinders, if not entirely precludes, real-time thermal imaging. In this Letter, we propose an alternative approach based on the luminescence intensity ratio integrated over two temporal gates. Tests conducted on two representative phosphors, Ba<sub>2</sub>LaNbO<sub>6</sub>:1%Mn<sup>4+</sup> and Ca<sub>2</sub>LaNbO<sub>6</sub>:1%Mn<sup>4+</sup>, demonstrate that the proposed method not only enables thermal imaging but also achieves substantially higher relative sensitivity, reaching <i>S</i><sub>R</sub> = 17.1% K<sup>–1</sup> for Ba<sub>2</sub>LaNbO<sub>6</sub>:1%Mn<sup>4+</sup> and <i>S</i><sub>R</sub> = 9.4% K<sup>–1</sup> for Ca<sub>2</sub>LaNbO<sub>6</sub>:1%Mn<sup>4+</sup>, compared to the conventional lifetime-based approach (<i>S</i><sub>R</sub> = 4.2% K<sup>–1</sup> for Ba<sub>2</sub>LaNbO<sub>6</sub>:1%Mn<sup>4+</sup> and <i>S</i><sub>R</sub> = 1.2% K<sup>–1</sup> for Ca<sub>2</sub>LaNbO<sub>6</sub>:1%Mn<sup>4+</sup>). Furthermore, the careful selection of gate lengths allows optimization of the thermometric performance of the proposed luminescent thermometers. 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引用次数: 0
摘要
毫无疑问,发光测温最显著的优点之一是它不仅可以用于点温度测量,而且可以用于成像温度变化。在普遍提出的方法中,基于发光动力学的发光测温具有特殊的前景。然而,大多数测温研究依赖于对发光衰减谱的分析,这种方法即使不是完全排除,也会严重阻碍实时热成像。在这封信中,我们提出了一种基于两个时间门的发光强度比集成的替代方法。在Ba2LaNbO6:1%Mn4+和Ca2LaNbO6:1%Mn4+两种代表性荧光粉上进行的测试表明,与传统的基于寿命的方法(Ba2LaNbO6:1%Mn4+ SR = 4.2% K-1和Ca2LaNbO6:1%Mn4+ SR = 1.2% K-1)相比,该方法不仅可以进行热成像,而且具有更高的相对灵敏度,Ba2LaNbO6:1%Mn4+ SR = 17.1% K-1, Ca2LaNbO6:1%Mn4+ SR = 9.4% K-1)。此外,精心选择栅极长度可以优化所提出的发光温度计的测温性能。这种方法能够以相对灵敏度为代价扩展热工作范围,提供多功能性以适应特定应用的温度计。
Luminescence Thermometry Based on Time Gates: Highly Sensitive Approach for Real-Time Sensing and Imaging
Undoubtedly, one of the most significant advantages of luminescence thermometry is its ability to be used not only for spot temperature measurements but also for imaging temperature changes. Among the commonly proposed approaches, luminescence thermometry based on luminescence kinetics holds particular promise. However, most thermometric studies rely on the analysis of luminescence decay profiles, a method that significantly hinders, if not entirely precludes, real-time thermal imaging. In this Letter, we propose an alternative approach based on the luminescence intensity ratio integrated over two temporal gates. Tests conducted on two representative phosphors, Ba2LaNbO6:1%Mn4+ and Ca2LaNbO6:1%Mn4+, demonstrate that the proposed method not only enables thermal imaging but also achieves substantially higher relative sensitivity, reaching SR = 17.1% K–1 for Ba2LaNbO6:1%Mn4+ and SR = 9.4% K–1 for Ca2LaNbO6:1%Mn4+, compared to the conventional lifetime-based approach (SR = 4.2% K–1 for Ba2LaNbO6:1%Mn4+ and SR = 1.2% K–1 for Ca2LaNbO6:1%Mn4+). Furthermore, the careful selection of gate lengths allows optimization of the thermometric performance of the proposed luminescent thermometers. This approach enables expansion of the thermal operating range at the cost of relative sensitivity, providing versatility to adapt the thermometer for specific applications.
期刊介绍:
The Journal of Physical Chemistry (JPC) Letters is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, chemical physicists, physicists, material scientists, and engineers. An important criterion for acceptance is that the paper reports a significant scientific advance and/or physical insight such that rapid publication is essential. Two issues of JPC Letters are published each month.