论文标题

在室温下外部偏置下复合屏障FTJ的参数fem模拟

Parametric FEM simulation of composite barrier FTJs under external bias at room temperature

论文作者

Tibeica, C., Sandu, T., Nedelcu, O., Plugaru, R., Plugaru, N.

论文摘要

在外部偏置电压下,在使用基于FEM的模拟的情况下,对复合屏障FTJ的参数化模型(具有非极性介电层)的参数化模型。该方法涉及Thomas-Fermi模型,假设对构建能量屏障曲线的极化电荷不完整筛选,并使用TSU-Esaki公式通过偏置电压依赖性隧道来数值通过屏障模拟电子传输。这自然包括对总电流密度的温度依赖性贡献。考虑了一组大量参数的变化,这些参数在现实的物理范围内相对于参考(原型)系统描述了复合屏障FTJ系统。在这项研究中,从在SRO/STO/BTO/SRO异质结构上报告的选定数据开始进行参数模拟。我们工作的最重要结果可以说:i)当我们对在接近300 K的温度下预测FTJ特征的预测感兴趣时,FEM模拟被证明是可靠的方法,ii)我们表明,几种具有较大TER值的配置可以预测,但是在状态下,当前密度很低时。我们建议结果可能对于在环境温度下评估FTJ性能以及通过使用不同的材料组合来符合特定模型的一组特性来设计前FTJ性能。

A study on a parametrized model of a composite barrier FTJ (three-interface system, with a non-polar dielectric layer) under an external bias voltage and at room temperature, using FEM-based simulations, was performed. The approach involves the Thomas-Fermi model assuming incomplete screening of polarization charges for building the energy barrier profile, and numerically simulates the electron transport through the barrier by bias-voltage-dependent tunneling, using Tsu-Esaki formulation. That naturally include the temperature dependent contributions to the total current density. The TER coefficient and current densities are computed considering variation of a large set of parameters that describe the composite barrier FTJ system in realistic physical range of values with respect to a reference (prototypical) system. In this study, the parametric simulations were performed starting from selected data reported on the SRO/STO/BTO/SRO heterostructure. The most important results of our work can be stated as follows: i) The FEM simulations prove to be reliable approach when we are interested in the prediction of FTJ characteristics at temperatures close to 300 K, and ii) We show that several configurations with large TER values may be predicted, but at the expense of very low current densities in the ON state. We suggest that the results may be useful for assessing the FTJ performances at ambient temperature, as well as to design preoptimized FTJs by using different combinations of materials to comply with a set of properties of a specific model.

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