论文标题

核壳铁电纳米颗粒中三维涡流状态的电场控制

Electric Field Control of Three-Dimensional Vortex States in Core-Shell Ferroelectric Nanoparticles

论文作者

Morozovska, Anna N., Eliseev, Eugene A., Hertel, Riccardo, Fomichov, Yevhen M., Tulaidan, Viktoriia, Reshetnyak, Victor Yu., Evans, Dean R.

论文摘要

在Landau-Ginzburg-Devonshire方法的框架中,结合静电方程式,我们在铁电钛酸铁液核心中进行了极化元素建模,该模型覆盖在聚合物或液体介质中的可调节型钛颗粒钛酸盐壳覆盖。在极化的初始随机或多域分布的零场松弛之后,在核心中形成稳定的二维涡旋,其中涡流轴沿着核心晶体学轴之一。随后,应用具有变化周期,强度和方向的均匀电场的正弦脉冲。涡流结构的场诱导的变化由轴向核的外观组成,形式为pr素纳米域的形式,核的生长,沿田间偏振的越来越多的方向以及单域状态的发作。我们介绍了术语“内核”,以命名涡旋纳米域在涡旋轴附近开发,并垂直于涡流平面。在铁磁性中,该区域通常称为涡流核心。涡旋状态具有核具有歧管变性,从三个涡旋轴,顺时针方向和逆时针方向沿涡旋轴的逆时针方向出现,以及核中的两个极化方向。对于核心壳纳米粒子的应用及其作为多位内存和相关逻辑单元的应用程序,单个核心中的众多涡流状态具有希望。在具有可控粘度的软物质介质中,可以使用涡旋壳纳米颗粒在球体上的旋转,可以使用来模仿量子功能。

In the framework of the Landau-Ginzburg-Devonshire approach coupled with electrostatic equations, we performed finite element modeling of the polarization behavior in a ferroelectric barium titanate core covered with a tunable paraelectric strontium titanate shell placed in a polymer or liquid medium. A stable two-dimensional vortex is formed in the core after a zero-field relaxation of an initial random or poly-domain distribution of the polarization, where the vortex axis is directed along one of the core crystallographic axes. Subsequently, sinusoidal pulses of a homogeneous electric field with variable period, strength, and direction are applied. The field-induced changes of the vortex structure consist in the appearance of an axial kernel in the form of a prolate nanodomain, the kernel growth, an increasing orientation of the polarization along the field, and the onset of a single-domain state. We introduced the term "kernel" to name the prolate nanodomain developed near the vortex axis and polarized perpendicular to the vortex plane. In ferromagnetism, this region is generally known as the vortex core. The vortex states with a kernel possess a manifold degeneracy, appearing from three equiprobable directions of vortex axis, clockwise and counterclockwise directions of polarization rotation along the vortex axis, and two polarization directions in the kernel. This multitude of the vortex states in a single core are promising for applications of core-shell nanoparticles and their ensembles as multi-bit memory and related logic units. The rotation of a vortex kernel over a sphere, possible for the core-shell nanoparticles in a soft matter medium with controllable viscosity, may be used to imitate qubit features.

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