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Characterizing new compositions of 001_c relaxor ferrolectric single crystals using a work-energy model

机译:使用工作能量模型表征001 _C释放的新组合物的新组合物

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The desired operating range of ferroelectric materials with compositions near the morphotropic phase boundary is limited by field induced phase transformations. In [001]_c cut and poled relaxor ferroelectric single crystals the mechanically driven ferroelectric rhombohedral to ferroelectric orthorhombic phase transformation is hindered by antagonistic electrical loading. Instability around the phase transformation makes the current experimental technique for characterization of the large field behavior very time consuming. Characterization requires specialized equipment and involves an extensive set of measurements under combined electrical, mechanical, and thermal loads. In this work a mechanism-based model is combined with a more limited set of experiments to obtain the same results. The model utilizes a work-energy criterion that calculates the mechanical work required to induce the transformation and the required electrical work that is removed to reverse the transformation. This is done by defining energy barriers to the transformation. The results of the combined experiment and modeling approach are compared to the fully experimental approach and error is discussed. The model shows excellent predictive capability and is used to substantially reduce the total number of experiments required for characterization. This decreases the time and resources required for characterization of new compositions.
机译:Morphotropic相位边界附近的组合物的所需操作范围是由现场诱导的相变的限制。在[001] _C切割和抛光弛豫的铁电单晶中,机械驱动的铁电rhombenhehehehehehehehehehehehehehehehehehehehehehehehehehehed通过拮抗的电荷阻碍了铁电正交相变。相位变换周围的不稳定性使得目前的实验技术表征大场行为非常耗时。表征需要专门的设备,并且涉及在组合电气,机械和热负荷下进行广泛的测量。在这项工作中,基于机制的模型与更有限的一组实验组合,以获得相同的结果。该模型利用工作 - 能量标准,计算诱导变换所需的机械工作,并将所需的电气作品逆转以反转变换。这是通过将能量障碍定义到转换来完成的。将组合实验和建模方法的结果与完全实验方法进行比较,讨论了误差。该模型显示出优异的预测能力,并且用于大大减少表征所需的实验总数。这降低了表征新组合物所需的时间和资源。

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