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用于温度传感的上转换KGd(PO₄)(WO₄):20%Yb,Ho荧光粉

Up-Converting KGd(PO)(WO):20%Yb,Ho Phosphors for Temperature Sensing.

作者信息

Grigorjevaite Julija, Katelnikovas Arturas

机构信息

Institute of Chemistry, Faculty of Chemistry and Geosciences, Vilnius University, Naugarduko 24, LT-03225 Vilnius, Lithuania.

出版信息

Materials (Basel). 2023 Jan 18;16(3):917. doi: 10.3390/ma16030917.

Abstract

Inorganic luminescent materials that can be excited with NIR radiation and emit in the visible spectrum have recently gained much scientific interest. Such materials can be utilized as anti-counterfeiting pigments, luminescent thermometers, bio-imaging agents, etc. In this work, we report the synthesis and optical properties of KGd(PO)(WO):Ho and KGd(PO)(WO):20%Yb,Ho powders. The single-phase samples were prepared by the solid-state reaction method, and the Ho concentration was changed from 0.5% to 10% with respect to Gd. It is interesting to note that under 450 nm excitation, no concentration quenching was observed in KGd(PO)(WO):Ho (at least up to 10% Ho) samples. However, adding 20% Yb has caused a gradual decrease in Ho emission intensity with an increase in its concentration. It turned out that this phenomenon is caused by the increasing probability of Ho → Yb energy transfer when Ho content increases. KGd(PO)(WO):20%Yb,0.5%Ho sample showed exceptionally high up-conversion (UC) emission stability in the 77-500 K range. The UC emission intensity reached a maximum at ca. 350 K, and the intensity at 500 K was around four times stronger than the intensity at 77 K. Moreover, the red/green emission ratio gradually increased with increasing temperature, which could be used for temperature sensing purposes.

摘要

能够被近红外辐射激发并在可见光谱范围内发光的无机发光材料最近引起了广泛的科学关注。这类材料可被用作防伪颜料、发光温度计、生物成像剂等。在这项工作中,我们报告了KGd(PO₄)(WO₄):Ho和KGd(PO₄)(WO₄):20%Yb,Ho粉末的合成及光学性质。通过固态反应法制备了单相样品,相对于Gd,Ho的浓度从0.5%变化到10%。值得注意的是,在450 nm激发下,KGd(PO₄)(WO₄):Ho样品(至少在Ho浓度达到10%时)未观察到浓度猝灭现象。然而,添加20%的Yb导致Ho发射强度随着其浓度的增加而逐渐降低。结果表明,这种现象是由于Ho含量增加时Ho→Yb能量转移概率增大所致。KGd(PO₄)(WO₄):20%Yb,0.5%Ho样品在77 - 500 K范围内表现出极高的上转换(UC)发射稳定性。UC发射强度在约350 K时达到最大值,500 K时的强度约为77 K时强度的四倍。此外,红/绿发射比随温度升高而逐渐增加,可用于温度传感。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9a60/9917978/a8e55e845e9f/materials-16-00917-g001.jpg

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