首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Giant power density produced by PIN-PMN-PT ferroelectric single crystals due to a pressure induced polar-to-nonpolar phase transformation
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Giant power density produced by PIN-PMN-PT ferroelectric single crystals due to a pressure induced polar-to-nonpolar phase transformation

机译:由于压力诱导的偏光 - 非极性相变,由PIN-PMN-PT铁电单晶产生的巨型功率密度

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The search for ferroelectric materials capable of producing high electric charge and power densities is important for developing a new generation of autonomous ferroelectric megawatt power supplies and ultrahigh-power-density ferroelectric energy storage devices. Here we report the results of experimental investigations of the mechanism for stress-induced depolarization of adiabatically compressing rhombohedral Pb(In1/2Nb1/2)O-3-Pb(Mg1/3Nb2/3)O-3-PbTiO3 (PIN-PMN-PT) single crystals. The important finding is that the geometric dimensions of PIN-PMN-PT crystals and the direction of adiabatic compression relative to the crystallographic orientation have significant impacts on the depolarization dynamics and the generated charge density. Based on the analysis of experimental results, we conclude that a basic depolarization mechanism is associated with stress-induced lattice distortion, which leads to the phase transformation from a polar rhombohedral R3m to a nonpolar R3c phase accounting for the complete depolarization of the crystals. We experimentally demonstrated that PIN-PMN-PT crystals are capable of releasing electric charge with a record high density, 0.47 C m(-2), which is not achievable in other ferroelectric materials. The produced power density in the external load is 0.53 MW cm(-3), being 2.4 times greater than that of the state-of-the-art Pb-0.99(Zr0.95Ti0.05)(0.98)Nb0.02O3 ferroelectric ceramics used in high-power systems. Therefore, PIN-PMN-PT crystals are very promising ferroelectric materials for high-power applications.
机译:寻找能够产生高电荷和高功率密度的铁电材料对于开发新一代自主式铁电兆瓦电源和超高功率密度铁电储能装置具有重要意义。本文报道了绝热压缩菱形Pb(In1/2Nb1/2)O-3-Pb(Mg1/3Nb2/3)O-3-PbTiO3(PIN-PMN-PT)单晶应力诱导去极化机制的实验研究结果。重要的发现是,PIN-PMN-PT晶体的几何尺寸和绝热压缩方向相对于晶体取向对退极化动力学和产生的电荷密度有显著影响。基于对实验结果的分析,我们得出结论,一种基本的去极化机制与应力诱导的晶格畸变有关,这种畸变导致晶体从极性菱形R3m相转变为非极性R3c相,从而导致晶体完全去极化。我们通过实验证明,PIN-PMN-PT晶体能够以创纪录的高密度0.47 cm(-2)释放电荷,这在其他铁电材料中是无法实现的。在外部负载下产生的功率密度为0.53mW cm(-3),是最先进的Pb-0.99(Zr0.95Ti0.05)(0.98)Nb0的2.4倍。02O3铁电陶瓷用于大功率系统。因此,PIN-PMN-PT晶体是非常有前途的大功率铁电材料。

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