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Dielectric constant tunability at microwave frequencies and pyroelectric behavior of lead-free submicrometer-structured (Bi0.5Na0.5)1??xBaxTiO3 ferroelectric ceramics

机译:无铅亚微米结构的(Bi0.5Na0.5)1 ?? xBaxTiO3铁电陶瓷的微波频率介电常数可调性和热电性能

摘要

In this article, we show that the dielectric constant of lead-free ferroelectric ceramics based on the solid solution (1-x)(Bi0.5Na 0.5)TiO3-xBaTiO3, with compositions at or near the morphotropic phase boundary (MPB), can be tuned by a local applied electric field. Two compositions have been studied, one at the MPB, with x = 0.06 (BNBT6), and another one nearer the BNT side of the phase diagram, with x = 0.04 (BNBT4). The tunability of the dielectric constant is measured at microwave frequencies between 100 MHz and 3 GHz by a nonresonant method and simultaneously applying a dc electric field. As expected, the tunability is higher for the composition at the MPB (BNBT6), reaching a maximum value of 60% for an electric field of 900 V/cm, compared with the composition below this boundary (BNBT4), which saturates at 40% for an electric field of 640 V/cm. The high tunability in both cases is attributed to the fine grain and high density of the samples, which have a submicrometer homogeneous grain structure with grain size of the order of a few hundred nanometers. Such properties make these ceramics attractive for microwave tunable devices. Finally, we have tested these ceramics for their application as infrared pyroelectric detectors and we have found that the pyroelectric figure of merit is comparable to traditional lead-containing pyroelectrics. © 1986-2012 IEEE.
机译:在本文中,我们证明了基于固溶体(1-x)(Bi0.5Na 0.5)TiO3-xBaTiO3的无铅铁电陶瓷的介电常数可以在或接近相变相界(MPB)的情况下实现。由局部施加的电场进行调谐。研究了两种成分,一种在MPB处,x = 0.06(BNBT6),另一种在相图的BNT侧附近,x = 0.04(BNBT4)。介电常数的可调谐性是通过非谐振方法在100 MHz和3 GHz之间的微波频率下同时施加直流电场来测量的。不出所料,MPB(BNBT4)处的组合物的可调谐性更高,与900 V / cm电场以下的组合物(BNBT4)的饱和度达到40%的情况相比,在900 V / cm的电场下达到60%的最大值。 640 V / cm的电场。两种情况下的高可调谐性都归因于样品的细晶粒和高密度,它们具有亚微米均匀的晶粒结构,晶粒尺寸为几百纳米。这些特性使这些陶瓷对于微波可调设备具有吸引力。最后,我们测试了这些陶瓷作为红外热释电探测器的应用,发现热释电性能因数可与传统含铅热释电相比。 ©1986-2012 IEEE。

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