扭曲对电独立双层中应变诱导的涡流极涡

IF 5.4 1区 物理与天体物理 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Yixuan Zhang, Haozhi Sha, Xueyun Wang, Deshan Liang, Jing Wang, Qian Li, Rong Yu, Houbing Huang
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引用次数: 0

摘要

最近二维(2D)涡流模式的发现揭示了纳米级极性拓扑工程和未探索的物理现象的新可能性。然而,这些涡纹的物理成因和详细的拓扑特征仍不清楚。在本研究中,基于铁电体的晶格极化耦合,我们用弹性理论解析确定了在扭曲双层体系中发现的应变状态。此外,还通过相场模拟研究了所得到的涡纹。我们的研究结果表明,平面内的莫尔涡是由莫尔涡堆积引起的周期性位移涡量引起的。弹性能量、柔电能量和梯度能量之间的复杂相互作用被认为是这些涡旋模式形成背后的能量驱动力。通过三维模拟,我们发现每个极涡都表现出明显的面内散度和面外手性,后者可以通过外电场调节。这些发现为操纵纳米级铁电拓扑结构提供了新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Strain-induced moiré polar vortex in twisted paraelectric freestanding bilayers

Strain-induced moiré polar vortex in twisted paraelectric freestanding bilayers

The recent discovery of two-dimensional (2D) moiré vortex patterns reveals new possibilities for nanoscale polar topology engineering and unexplored physical phenomena. However, the physical origin and detailed topological characteristics of these moiré vortex patterns have still not been understood. In this study, based on the lattice polarization coupling of ferroelectrics, we analytically determined the discovered strain state in twisted bilayer systems by elastic theory. Furthermore, the resulting moiré vortex patterns are investigated via phase-field simulations. Our findings demonstrate that the in-plane moiré vortex patterns arise from periodic displacement vorticity induced by moiré stacking. The complex interplay among elastic, flexoelectric, and gradient energy is identified as the energetic driving force behind the formation of these vortex patterns. Through three-dimensional simulation, we reveal that each polar vortex exhibits significant in-plane divergence and out-of-plane chirality, with the latter being tunable via external electric fields. These findings offer new avenues for manipulating nanoscale ferroelectric topologies.

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来源期刊
npj Quantum Materials
npj Quantum Materials Materials Science-Electronic, Optical and Magnetic Materials
CiteScore
10.60
自引率
3.50%
发文量
107
审稿时长
6 weeks
期刊介绍: npj Quantum Materials is an open access journal that publishes works that significantly advance the understanding of quantum materials, including their fundamental properties, fabrication and applications.
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