Structural Confinement Induced Near-Unity Quantum Yield for Single-Band Ratiometric Thermometry

被引:18
|
作者
Chang, Jiwen [1 ]
Wang, Yu [1 ]
Zhang, Zixuan [1 ]
Guo, Dongxu [1 ]
Zhao, Peihang [1 ]
Wang, Nan [1 ]
Wang, Zhijun [1 ]
Li, Leipeng [1 ]
Li, Panlai [1 ]
Suo, Hao [1 ]
机构
[1] Hebei Univ, Coll Phys Sci & Technol, Natl Local Joint Engn Lab New Energy Photoelect De, Hebei Key Lab Opt Elect Informat & Mat, Baoding 071002, Peoples R China
基金
中国国家自然科学基金;
关键词
concentration quenching; luminescence; luminescence thermometry; rare-earth doped phosphors; thermally enhanced emission; UP-CONVERSION; BOLTZMANN THERMOMETRY; ENERGY-TRANSFER; LUMINESCENCE; STATE; NANOTHERMOMETRY; NAY(WO4)(2); EMISSION; CENTERS;
D O I
10.1002/lpor.202300542
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Luminescence quenching at high dopant concentration and temperature typically limits the brightness of luminescence materials, which remains a major obstacle in diverse technological applications, especially in the field of luminescence thermometry. In this work, a unique class of non-concentration quenching double-tungstate phosphors is reported that feature the near-unity quantum yield of Tb3+ and Eu3+ emissions induced by the structural confinement effect. Mechanistic studies affirm that the activator ions can be isolated in NaYW2O8 crystal to confine the absorbed photon energy, leading to a relatively high quenching concentration of various lanthanide activators. By facilitating interionic cross-relaxation at heavy dopant concentration, a remarkable thermal enhancement of Tb3+ emissions over 20-fold upon the excitation of excited-state absorption is recorded. In contrast, thermally quenched emissions are detected under the excitation of ground-state absorption. This excitation wavelength-dependent thermal behavior of Tb3+ emissions is harnessed for single-band ratiometric thermometry, registering superior thermal sensitivity and resolution (Sr = 4.01% K-1, delta T = 0.1 K). The advances in combating concentration and thermal quenching of luminescence materials provide exciting opportunities for flexible thermometry in real-world sensing scenarios. The near-unity quantum yield of Tb3+ and Eu3+ emissions is realized by overcoming the concentration quenching in NaYW2O8 crystal with structural confinement feature. Remarkably, cross-relaxation-promoted thermal enhancement of Tb3+ emissions of over 20-fold is recorded upon ESA excitation, registering the superior performance of thin-film SBR thermometry. image
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页数:8
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