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Self-ordering of nontrivial topological polarization structures in nanoporous ferroelectrics

机译:Self-ordering非平凡的拓扑极化结构纳米多孔铁电体

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摘要

Topological field structures, such as skyrmions, merons, and vortices, are important features found in ordered systems with spontaneously broken symmetry. A plethora of topological field structures have been discovered in magnetic and ordered soft matter systems due to the presence of inherent chiral interactions, and this has provided a fruitful platform for unearthing additional groundbreaking functionalities. However, despite being one of the most important classes of ordered systems, ferroelectrics scarcely form topological polarization structures due to their lack of intrinsic chiral interactions. In the present study, we demonstrate using multiphysics phase-field modelling based on the Ginzburg-Landau theory that a rich assortment of nontrivial topological polarization structures, including hedgehogs, antivortices, multidirectional vortices, and vortex arrays, can be spontaneously formed in three-dimensional nano-porous ferroelectric structures. We realize that confining ferroelectrics to trivial geometries that are incompatible with the orientation symmetry may impose extrinsic frustration to the polarization field through the enhancement of depolarization fields at free porous surfaces. This frustration gives rise to symmetry breaking, resulting in the formation of nontrivial topological polarization structures as the ground state. We further topologically characterize the local accommodation of polarization structures by viewing them in a new perspective, in which polarization ordering can be mapped on the order parameter space, according to the topological theory of defects and homotopy theory. The results indicate that the nanoporous structures contain composite topological objects composed of two or more elementary topological polarization structures. The present study therefore offers a playground for exploring novel physical phenomena in ferroelectric systems as well as a novel nanoelectronics characterization platform for future topology-based nanotechnologies.
机译:拓扑结构,如skyrmions、后基节,漩涡,是重要的特性发现与自发有序的系统破碎的对称。结构在磁场和被发现命令软物质系统由于存在的固有手性相互作用,这为挖掘提供了一个富有成果的平台额外的突破性的功能。然而,尽管是最重要的一个类的命令系统,铁电体几乎形成拓扑极化结构由于他们缺乏固有手性交互。演示使用多重物理量相场建模基于金兹堡朗道理论丰富的各式各样的非平凡拓扑极化结构,包括刺猬,antivortices、多向漩涡涡流阵列,可以自发形成的三维nano-porous铁电结构。铁电体的简单的几何图形不符合方向对称实施外在挫折极化通过增强去极化场字段在免费的多孔表面。对称断裂引起,导致的重要的拓扑极化的形成基态结构。拓扑描述当地的住宿的极化结构观看他们在一个新的视角,即极化订购可以映射在秩序参数空间,根据拓扑理论的缺陷和同伦论。结果表明,纳米多孔结构含有复合拓扑对象组成的两个或两个以上的基本拓扑极化结构。探索新的物理现象的操场在铁电系统以及小说纳电子学特性的平台未来的架构纳米技术。

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