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纳米超材料中同时存在分层铁电和铁环面极化。

Hierarchical ferroelectric and ferrotoroidic polarizations coexistent in nano-metamaterials.

作者信息

Shimada Takahiro, Lich Le Van, Nagano Koyo, Wang Jie, Kitamura Takayuki

机构信息

Department of Mechanical Engineering and Science, Kyoto University, Nishikyo-ku, Kyoto 615-8540, Japan.

Department of Engineering Mechanics, School of Aeronautics and Astronautics, Zhejiang University, Hangzhou 310027, China.

出版信息

Sci Rep. 2015 Oct 1;5:14653. doi: 10.1038/srep14653.

Abstract

Tailoring materials to obtain unique, or significantly enhanced material properties through rationally designed structures rather than chemical constituents is principle of metamaterial concept, which leads to the realization of remarkable optical and mechanical properties. Inspired by the recent progress in electromagnetic and mechanical metamaterials, here we introduce the concept of ferroelectric nano-metamaterials, and demonstrate through an experiment in silico with hierarchical nanostructures of ferroelectrics using sophisticated real-space phase-field techniques. This new concept enables variety of unusual and complex yet controllable domain patterns to be achieved, where the coexistence between hierarchical ferroelectric and ferrotoroidic polarizations establishes a new benchmark for exploration of complexity in spontaneous polarization ordering. The concept opens a novel route to effectively tailor domain configurations through the control of internal structure, facilitating access to stabilization and control of complex domain patterns that provide high potential for novel functionalities. A key design parameter to achieve such complex patterns is explored based on the parity of junctions that connect constituent nanostructures. We further highlight the variety of additional functionalities that are potentially obtained from ferroelectric nano-metamaterials, and provide promising perspectives for novel multifunctional devices. This study proposes an entirely new discipline of ferroelectric nano-metamaterials, further driving advances in metamaterials research.

摘要

通过合理设计结构而非化学成分来定制材料,以获得独特或显著增强的材料性能,这是超材料概念的原则,该原则促成了卓越光学和机械性能的实现。受电磁和机械超材料近期进展的启发,我们在此引入铁电纳米超材料的概念,并通过使用复杂的实空间相场技术对铁电体的分层纳米结构进行计算机模拟实验来加以论证。这一新概念能够实现各种不同寻常、复杂但可控的畴模式,其中分层铁电极化和铁环面极化之间的共存为探索自发极化有序中的复杂性建立了新的基准。该概念开辟了一条通过控制内部结构有效定制畴构型的新途径,有助于实现对复杂畴模式的稳定和控制,而这些模式具有实现新功能的巨大潜力。基于连接组成纳米结构的结的奇偶性,探索了实现此类复杂模式的关键设计参数。我们进一步强调了铁电纳米超材料可能获得的各种附加功能,并为新型多功能器件提供了有前景的展望。本研究提出了铁电纳米超材料这一全新学科,进一步推动了超材料研究的进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aebb/4589792/dca390d3fc75/srep14653-f1.jpg

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