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Tunable tunneling electroresistance in ferroelectric tunnel junctions by mechanical loads

机译:机械载荷作用下铁电隧道结中的可调隧道电阻

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摘要

Combining nonequilibrium Green functions approach with density functional theory, effects of the applied mechanical loads on polarization, electrostatic potential, and tunneling conductance of a ferroelectric tunneling junction (FTJ) have been investigated. Using the first principle calculations, we show that compressive strains can induce and enhance the polarization in ferroelectric tunnel barriers, and practically achieve ferroelectricity in two unit cell thickness under a -2.2% compressive strain. More importantly, mechanical strains can significantly change the effective electrostatic potential in FTJ and thus control its tunneling conductance, which is defined as giant piezoelectric resistance (GPR) effect. Our calculations indicate that GPR effect is particularly significant near the paraelectric/ferroelectric phase transition, and increases exponentially with the barrier thickness. Furthermore, it is also found that defects of oxygen vacancies and nitrogen doping have little impact on GPR ratio of strained FTJ. Because of its high-sensitivity to external mechanical loads, FTJ with GPR effect should be adequate for applications in agile mechanical sensors, transducers, and other multifunctional devices.
机译:结合非平衡格林函数方法和密度泛函理论,研究了施加的机械载荷对铁电隧道结(FTJ)的极化,静电势和隧道电导的影响。使用第一个原理计算,我们显示出压缩应变可以诱导和增强铁电隧道势垒中的极化,并在-2.2%的压缩应变下实际实现两个单位电池厚度的铁电。更重要的是,机械应变可以显着改变FTJ中的有效静电势,从而控制其隧穿电导,这被定义为巨型压电电阻(GPR)效应。我们的计算表明,GPR效应在顺电/铁电相变附近尤为明显,并且随着势垒厚度的增加呈指数增长。此外,还发现氧空位和氮掺杂的缺陷对应变FTJ的GPR比几乎没有影响。由于具有对外部机械负载的高灵敏度,具有GPR效应的FTJ应该足够用于敏捷的机械传感器,传感器和其他多功能设备中。

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