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Low-energy structural dynamics of ferroelectric domain walls in hexagonal rare-earth manganites

机译:六角形稀土锰铁矿中铁电畴壁的低能结构动力学

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Domain walls (DWs) in ferroic materials, across which the order parameter abruptly changes its orientation, can host emergent properties that are absent in the bulk domains. Using a broadband (106 to 1010 Hz) scanning impedance microscope, we show that the electrical response of the interlocked antiphase boundaries and ferroelectric DWs in hexagonal rare-earth manganites (h-RMnO3) is dominated by the bound-charge oscillation rather than free-carrier conduction at the DWs. As a measure of the rate of energy dissipation, the effective conductivity of DWs on the (001) surfaces of h-RMnO3 at gigahertz frequencies is drastically higher than that at dc, whereas the effect is absent on surfaces with in-plane polarized domains. First-principles and model calculations indicate that the frequency range and selection rules are consistent with the periodic sliding of the DW around its equilibrium position. This acoustic wave–like mode, which is associated with the synchronized oscillation of local polarization and apical oxygen atoms, is localized perpendicular to the DW but free to propagate along the DW plane. Our results break the ground to understand structural DW dynamics and exploit new interfacial phenomena for novel devices.
机译:铁磁材料中的畴壁(DW),其阶跃参数会突然改变其方向,可以容纳散装畴中不存在的新兴属性。使用宽带(10 6 至10 10 Hz)扫描阻抗显微镜,我们发现六角形稀土锰矿中互锁的反相边界和铁电DW的电响应( h-RMnO 3 )主要受束缚电荷振荡的影响,而不是DW处的自由载流子传导。作为能量耗散率的量度,在千兆赫频率下,h-RMnO 3 的(001)表面上的DW的有效电导率大大高于dc时的有效电导率,而在具有平面极化域的表面。第一性原理和模型计算表明,频率范围和选择规则与DW围绕其平衡位置的周期性滑动一致。这种类似于声波的模式与局部极化和顶部氧原子的同步振荡有关,它垂直于DW定位,但可以自由地沿DW平面传播。我们的结果为了解结构体DW动力学开辟了基础,并为新型设备开发了新的界面现象。

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