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首页> 外文期刊>RSC Advances >Novel optical temperature sensor based on emission in Pr3+ doped ferroelectric Ba0.7Sr0.31TiO3
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Novel optical temperature sensor based on emission in Pr3+ doped ferroelectric Ba0.7Sr0.31TiO3

机译:新型光学温度传感器基于PR3 +掺杂铁电BA0.7SR0.31TiO3的发射

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摘要

Optical temperature sensing based on the variation of the fluorescence intensity ratio of rare-earth materials has become appealing due to its multiple superiorities over electrical temperature sensing. However, confined by the largest energy separation of two thermally linked levels of rare earth ions, the highest sensitivity of such temperature sensing is essentially smaller than 2878/T-2, as reported previously from diverse systems. In this work, we demonstrate that ultrahigh-sensitive temperature sensing can be achieved from Pr3+-doped (Ba0.7Sr0.3)TiO3 based on the intensity ratio of the D-1(2)-H-3(4) emission to the P-3(0)-H-3(4) emission. The ratio can be increased as much as 90-fold when the temperature rises from room temperature to 513 K, nicely fitting a thermally linked-levels like equation and showing an ultrahigh sensitivity of 4275.1/T-2. The striking change of the ratio is attributed to the interaction between the two emission levels and the intervalence charge transfer state. This work may have provided a distinct route in the field of optical temperature sensing utilizing rare-earth-doped materials. In addition, the resultant product also possesses excellent photoluminescence and ferroelectric properties, showing promising potentials in multifunctional devices for practical applications.
机译:基于稀土材料的荧光强度比变化的光学温度感测由于其电气温度传感的多种优势而变得吸引。然而,局限于两种热链接水平的稀土离子的最大能量分离,所以如前所述从不同的系统报告的那样,这种温度传感的最高敏感性基本上小于2878 / t-2。在这项工作中,我们证明,基于D-1(2)-H-3(4)发射的强度比,可以通过PR3 + - 掺杂(BA0.7SR0.3)TiO3实现超高敏感的温度感测。 P-3(0)-H-3(4)发射。当温度从室温升高至513k时,该比例可以增加到90倍,很好地拟合出类似的等式,并且显示出4275.1 / T-2的超高敏感性。比率的醒目变化归因于两个发射水平与间歇电荷转移状态之间的相互作用。该工作可以在利用稀土掺杂材料提供光学温度传感领域的不同路线。此外,所得产物还具有优异的光致发光和铁电性能,显示出用于实际应用的多功能装置中的有希望的电位。

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  • 来源
    《RSC Advances 》 |2018年第42期| 共6页
  • 作者单位

    Guangdong Acad Sci Guangdong Res Insitute Rare Met Guangzhou 510650 Guangdong Peoples R China;

    Guangdong Acad Sci Guangdong Res Insitute Rare Met Guangzhou 510650 Guangdong Peoples R China;

    Guangdong Acad Sci Guangdong Res Insitute Rare Met Guangzhou 510650 Guangdong Peoples R China;

    Guangdong Acad Sci Guangdong Res Insitute Rare Met Guangzhou 510650 Guangdong Peoples R China;

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  • 正文语种 eng
  • 中图分类 化学 ;
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