超晶格
凝聚态物理
铁电性
极地的
涡流
空中骑兵
各向同性
相图
各向异性
拓扑(电路)
极化(电化学)
拓扑缺陷
物理
材料科学
相(物质)
光学
电介质
化学
量子力学
光电子学
数学
物理化学
组合数学
热力学
作者
Cheng Dai,Zijian Hong,Sujit Das,Yun‐Long Tang,Lane W. Martin,R. Ramesh,Long‐Qing Chen
摘要
The (PbTiO3)n/(SrTiO3)n (PTO/STO) superlattice system has been shown to exhibit interesting topological phases (e.g., vortices and skyrmions) in addition to normal ferroelectric domain states. Existing studies are mostly focused on the dependence of topological polar distributions and properties of PTO/STO superlattice on its periodicity. Here, we study the strain effect on the topological phase transitions and ferroelectric domain structures employing phase-field simulations. We summarized in an isotropic strain (in-plane misfit strain along the x direction is equal to that along the y direction) periodicity phase diagram displaying the stability regions of different polar topological states, including normal ferroelectric twins, vortices, skyrmions, and mixtures of vortices and twins. We also analyzed the polarization configurations under anisotropic in-plane strains (in-plane misfit strain along the x direction is not equal to that along the y direction) and demonstrated that the strain anisotropy can be used to tune the directions of vortex arrays along either the [100] pc or [010] pc directions or labyrinth vortex arrays. This work offers guidance to manipulating polar structures in the PTO/STO superlattices via strain engineering.
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