单轴极性离子塑性晶体[(C2H5)4N][FeBrCl3]的机电特性

Julian Walker, E. D. Sødahl, Simon Scherre, Kenneth Marshall, Dmitry Chernyshov, Kristian Berland, T. Rojac
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摘要

铁电塑料晶体是一类新兴材料,它将室温铁电性和压电性与熔化前的高温塑料介相结合在一起。这些材料为获得与最先进的金属氧化物和聚合物铁电体不同的性能参数空间提供了可能性。四乙基溴三氯铁氧体[(C2H5)4N][FeBrCl3]具有单极性的类乌兹石结构,因此有可能像等对称 AlN 一样具有小而稳定的压电系数。本研究采用密度泛函理论计算弹性顺应性、压电系数和介电常数值。通过单晶同步加速器 X 射线衍射、阻抗光谱以及高场和弱场机电表征,对从水溶液中生长出来的单晶进行了评估。衍射研究表明,阴离子四面体优先定向,使硼离子与极化矢量有 30% 的对齐度。机电测量发现压电系数在 5 到 9 pCN-1 和 pmV-1 之间。压电系数(d33)最为稳定,在 0.4 至 90 Hz 和 0.5 至 3 V 之间的变化率为 3.4%。根据直流偏置场和温度的函数还进行了其他压电稳定性测量。阻抗测量结果表明,离子塑料晶体特有的内在效应(如分子旋转)或电极界面的外在效应都会对材料的机电响应产生影响。研究结果表明,[(C2H5)4N][FeBrCl3] 具有作为小信号压电体的潜力,其弹性模量比 AlN 软,但比聚偏氟乙烯硬,因此占据了一个独特的参数空间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electromechanical properties of uniaxial polar ionic plastic crystal [(C2H5)4N][FeBrCl3]
Ferroelectric plastic crystals are an emerging class of materials that combine room temperature ferroelectricity and piezoelectricity with a high temperature plastic mesophase prior to melting. These materials offer possibilities for accessing different property parameter spaces from the state-of-the-art metal oxide and polymer ferroelectrics. Tetraethylammonium bromotrichloroferrite, [(C2H5)4N][FeBrCl3], has a unipolar wurtzite-like structure and thus may have potential for small but stable piezoelectric coefficients like the iso-symmetrical AlN. In this study, density functional theory was used to compute elastic compliance, piezoelectric coefficients, and dielectric constant values. Single crystals grown from aqueous solutions were evaluated via single crystal synchrotron x-ray diffraction, impedance spectroscopy and high and weak-field electromechanical characterization. Diffraction studies revealed that the anion tetrahedra orientated preferentially so that the Br- ion had a 30% alignment with the polarization vector. Electromechanical measurements found piezoelectric coefficients in the 5 to 9 pCN-1 and pmV-1 range. The piezoelectric coefficient (d33) was most stable with 3.4% variation between 0.4 and 90 Hz and 0.5 and 3 V. Additional piezoelectric stability measurements were made as a function of DC bias field and temperature. Impedance measurements indicate contributions from either intrinsic effects unique to ionic plastic crystals, such as molecular rotation, or the extrinsic effect of electrode interfaces, both of which can play a role in the electromechanical response of the materials. The results show that [(C2H5)4N][FeBrCl3] has potential as a small signal piezoelectric that has a softer elastic moduli than AlN but a stiffer moduli than polyvinylidene fluoride, and thus occupies a unique parameter space.
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