首页> 美国卫生研究院文献>Scientific Reports >In-situ Electric Field-Induced Modulation of Photoluminescence in Pr-doped Ba0.85Ca0.15Ti0.90Zr0.10O3 Lead-Free Ceramics
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In-situ Electric Field-Induced Modulation of Photoluminescence in Pr-doped Ba0.85Ca0.15Ti0.90Zr0.10O3 Lead-Free Ceramics

机译:Pr掺杂Ba0.85Ca0.15Ti0.90Zr0.10O3无铅陶瓷中电场的光致发光调制

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摘要

Luminescent materials with dynamic photoluminescence activity have aroused special interest because of their potential widespread applications. One proposed approach of directly and reversibly modulating the photoluminescence emissions is by means of introducing an external electric field in an in-situ and real-time way, which has only been focused on thin films. In this work, we demonstrate that real-time electric field-induced photoluminescence modulation can be realized in a bulk Ba0.85Ca0.15Ti0.90Zr0.10O3 ferroelectric ceramic doped with 0.2 mol% Pr3+, owing to its remarkable polarization reversal and phase evolution near the morphotropic phase boundary. Along with in-situ X-ray diffraction analysis, our results reveal that an applied electric field induces not only typical polarization switching and minor crystal deformation, but also tetragonal-to-rhombohedral phase transformation of the ceramic. The electric field-induced phase transformation is irreversible and engenders dominant effect on photoluminescence emissions as a result of an increase in structural symmetry. After it is completed in a few cycles of electric field, the photoluminescence emissions become governed mainly by the polarization switching, and thus vary reversibly with the modulating electric field. Our results open a promising avenue towards the realization of bulk ceramic-based tunable photoluminescence activity with high repeatability, flexible controllability, and environmental-friendly chemical process.
机译:具有动态光致发光活性的发光材料由于其潜在的广泛应用而引起了特别的兴趣。直接和可逆地调制光致发光发射的一种建议方法是通过以原位和实时方式引入外部电场,该电场仅集中在薄膜上。在这项工作中,我们证明了由于掺杂了0.2 mol%Pr 3 + 的块体Ba0.85Ca0.15Ti0.90Zr0.10O3铁电陶瓷可以实现实时电场感应的光致发光调制。其在同相相界附近具有显着的极化反转和相演化。连同原位X射线衍射分析,我们的结果表明,施加的电场不仅会引起陶瓷的典型极化转换和微小晶体变形,还会引起陶瓷的四面体到菱面体相变。电场引起的相变是不可逆的,并且由于结构对称性的增加而对光致发光发射起主要作用。在几个电场周期中完成后,光致发光发射主要由偏振转换控制,因此随调制电场可逆地变化。我们的结果为实现具有高重复性,灵活的可控制性和环境友好的化学过程的基于陶瓷的可调光致发光活性开辟了有希望的途径。

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