Yao Qirong, Wang Feifei, Xu Feng, Leung Chung Ming, Wang Tao, Tang Yanxue, Ye Xiang, Xie Yiqun, Sun Dazhi, Shi Wangzhou
Key Laboratory of Optoelectronic Material and Device, Department of Physics, Shanghai Normal University , Shanghai 200234, China.
ACS Appl Mater Interfaces. 2015 Mar 11;7(9):5066-75. doi: 10.1021/acsami.5b00420. Epub 2015 Feb 24.
In this work, an electric field-induced giant strain response and excellent photoluminescence-enhancement effect was obtained in a rare-earth ion modified lead-free piezoelectric system. Pr(3+)-modified 0.93(Bi0.5Na0.5)TiO3-0.07BaTiO3 ceramics were designed and fabricated by a conventional fabrication process. The ferroelectric, dielectric, piezoelectric, and photoluminescence performances were systematically studied, and a schematic phase diagram was constructed. It was found the Pr(3+) substitution induced a transition from ferroelectric a long-range order structure to a relaxor pseudocubic phase with short-range coherence structure. Around a critical composition of 0.8 mol % Pr(3+), a giant reversible strain of ∼0.43% with a normalized strain Smax/Emax of up to 770 pm/V was obtained at ∼5 kV/mm. Furthermore, the in situ electric field enhanced the photoluminescence intensity by ∼40% in the proposed system. These findings have great potential for actuator and multifunctional device applications, which may also open up a range of new applications.
在这项工作中,在稀土离子改性的无铅压电体系中获得了电场诱导的巨大应变响应和优异的光致发光增强效应。通过传统制备工艺设计并制备了Pr(3+)改性的0.93(Bi0.5Na0.5)TiO3-0.07BaTiO3陶瓷。系统研究了其铁电、介电、压电和光致发光性能,并构建了示意性相图。发现Pr(3+)取代导致从铁电长程有序结构向具有短程相干结构的弛豫假立方相转变。在约0.8 mol% Pr(3+)的临界组成附近,在约5 kV/mm下获得了约0.43%的巨大可逆应变,归一化应变Smax/Emax高达770 pm/V。此外,在所提出的体系中原位电场使光致发光强度提高了约40%。这些发现对于 actuator 和多功能器件应用具有巨大潜力,这也可能开辟一系列新的应用。