材料科学
解耦(概率)
拓扑缺陷
拓扑(电路)
电介质
凝聚态物理
相变
环面
相图
各向异性
极地的
应变工程
拓扑序
对称(几何)
液晶
相(物质)
铁电性
实现(概率)
领域(数学)
纹理(宇宙学)
工作(物理)
纳米技术
对称性破坏
软物质
镜像对称
不稳定性
膜
拓扑绝缘体
纳米光刻
物质状态
手性(物理)
旋转对称性
基质(水族馆)
作者
Changqing Guo,Zhaochen Xi,Shouzhe Dong,H Yang,Yuanyuan Fan,Rongzhen Gao,Letao Yang,Jing Wang,Houbing Huang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-07-16
卷期号:20 (29): 20489-20497
标识
DOI:10.1021/acsnano.6c00216
摘要
The realization of stable three-dimensional (3D) topological excitations in condensed matter represents a key pathway for next-generation high-density storage and low-power logic architectures. However, stabilizing such complex textures in ferroelectrics is often constrained due to thermodynamic instability and rigid substrate clamping. This work demonstrates the deterministic mechanical writing of topological torons─localized 3D skyrmion-tube-like polar textures terminated by Bloch points─in freestanding paraelectric SrTiO3 nanomembranes utilizing phase-field simulations. By exploiting the spatially modulated strain gradients induced by a localized mechanical probe, the simulation reveals the generation of a sign-reversing flexoelectric field with magnitudes reaching approximately 3.5 MV/cm. This field acts as a local symmetry-breaking template, inducing a stable polar state from the room-temperature paraelectric background and forming a toroidal configuration. Systematic mapping of the topological evolution under increasing mechanical stimuli reveals a depth-dependent decoupling transition from a coherent Néel-type texture to a twisted Bloch-type configuration. Furthermore, a comprehensive phase diagram elucidates the role of flexoelectric anisotropy in governing the topological ground state. These results establish flexoelectric strain-gradient engineering as a precise, purely mechanical mechanism for creating and manipulating 3D polar topologies, providing quantitative theoretical guidelines for experimental implementation and the development of reconfigurable mechano-topological devices.
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