材料科学
荧光粉
光纤
光电子学
聚二甲基硅氧烷
热稳定性
宽带
热的
灵敏度(控制系统)
温度测量
发射强度
纤维
纳米技术
工作(物理)
纳米材料
荧光
温度计
复合材料
作者
Chundong Shan,Dong Chen,Heyi Yang,Qinan Mao,Fangyi Zhao,Meijiao Liu,Su Zhou,Jiasong Zhong
摘要
ABSTRACT Conventional optical thermometry based on dual‐valent Eu 2+ /Eu 3+ often necessitates complex synthesis under reducing atmospheres and suffers from limited sensitivity. Additionally, typical optical thermometric materials are predominantly in powder form and lack suitable application carriers. Herein, a highly sensitive optical thermometry is developed based on dual‐valent Eu 2+ /Eu 3+ emissions in a self‐reduced Ba 2 ZnSi 2 O 7 (BZSO) host, synthesized conveniently in air without a reducing atmosphere. The fluorescence intensity ratio of the thermally coupled Eu 2+ broadband and Eu 3+ sharp‐line emissions enables temperature sensing, achieving a maximum relative sensitivity ( S r ) of 2.92% K −1 at 396 K. Then, strategic Sr 2+ substitution for Ba 2+ induces lattice contraction, strengthening the crystal field around Eu 2+ and simultaneously enhancing the thermal stability of Eu 3+ emission and the temperature sensitivity. The optimized B 1.95 S 0.05 ZSO:0.07Eu 2+ ,Eu 3+ achieves a superior S r of 3.93% K −1 at 389 K. Furthermore, the optimized phosphor is incorporated into a polydimethylsiloxane to fabricate a flexible and stretchable optical fiber. The resulting fiber conforms closely to human skin, exhibiting great potential for physiological temperature monitoring, and also enables real‐time, in situ temperature sensing in aquatic environments. This work presents a facile and effective strategy for designing high‐performance, flexible optical thermometers for environmental and biomedical applications.
科研通智能强力驱动
Strongly Powered by AbleSci AI