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Photoluminescence, ferroelectric, dielectric and piezoelectric properties of Er-doped BNT-BT multifunctional ceramics

机译:掺ErBNT-BT多功能陶瓷的光致发光,铁电,介电和压电性能

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0.93(Bi0.5-x/0.93Erx/0.93Na0.5)TiO3-0.07BaTiO(3) photoluminescent ceramics have been prepared by a conventional ceramic fabrication technique and their photoluminescence, ferroelectric, dielectric and piezoelectric properties have been studied. Under an excitation of 980 nm, the ceramics exhibit visible up-conversion luminescent emissions at 532 nm (green), 540 nm (green) and 600 nm (red), as well as broadband down-conversion luminescent emissions in near-infrared (1.44-1.66 mu m) and mid-infrared (2.62-2.84 mu m) regions. The quenching concentration for the ceramics is high, about 6%, and both the visible and invisible emissions are very strong. Among the emissions, the photoluminescence intensity of the red emission band increases most significantly by more than 47 times as the Er-concentration increases from 0.005 to 0.07. As a result, the Commission Internationale de L'Eclairage chromaticity coordinates shift from (0.29, 0.69) to (0.49, 0.50), and the emission color changes from green to yellowish green. Owing to the establishment of a dynamic circulatory energy process at high Er-concentrations, the photoluminescence intensity of the mid-infrared emission increases significantly by more than 4 times at the expense of the near-infrared emission. Together with the good ferroelectric and piezoelectric properties, the ceramics should be promising candidates for multifunctional optoelectronic applications. (C) 2014 Elsevier B.V. All rights reserved.
机译:通过常规陶瓷制造技术制备了0.93(Bi0.5-x / 0.93Erx / 0.93Na0.5)TiO3-0.07BaTiO(3)光致发光陶瓷,并对其光致发光,铁电,介电和压电性能进行了研究。在980 nm的激发下,陶瓷在532 nm(绿色),540 nm(绿色)和600 nm(红色)处显示可见的向上转换发光,以及在近红外(1.44)下的宽带下转换发光。 -1.66微米)和中红外(2.62-2.84微米)区域。陶瓷的淬火浓度很高,约为6%,可见光和不可见光都非常强。在这些发射中,随着Er浓度从0.005增加到0.07,红色发射带的光致发光强度最显着地增加了47倍以上。结果,国际照明委员会的色度坐标从(0.29,0.69)变为(0.49,0.50),并且发射颜色从绿色变为黄绿色。由于在高Er浓度下建立了动态​​循环能量过程,中红外发射的光致发光强度显着提高了4倍以上,而以近红外发射为代价。陶瓷具有良好的铁电和压电性能,应成为多功能光电应用的有前途的候选材料。 (C)2014 Elsevier B.V.保留所有权利。

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