极地的
涡流
铁电性
超晶格
材料科学
极涡
凝聚态物理
电场
拓扑(电路)
非易失性存储器
相(物质)
拓扑缺陷
纳米尺度
纳米线
磁畴壁(磁性)
领域(数学)
能源景观
纳米技术
切换时间
传输(电信)
透射电子显微镜
光电子学
能量(信号处理)
物理
分子动力学
作者
Di Fan,Jianhua Ren,J-J Liang,Yonglan Hou,Tongfei Zhang,Yi Zhang,Weijin Chen,Congbing Tan
出处
期刊:Nano Letters
[American Chemical Society]
日期:2026-04-08
卷期号:26 (15): 5275-5281
标识
DOI:10.1021/acs.nanolett.6c00795
摘要
Topological polar vortices in ferroelectric superlattices offer intriguing opportunities for nanoscale functional devices; however, achieving nonvolatile electric-field control remains a formidable challenge due to their inherent elastic recovery. Here, we demonstrate reversible nonvolatile switching of polar vortices in PbTiO3/SrTiO3 (PTO/STO) superlattices, enabled by a thickness-engineered mixed-phase state. Using in situ transmission electron microscopy, we reveal that in PTO7/STO7 superlattices, polar vortices structurally coexist with ferroelectric a-domains, forming a laterally modulated mixed-phase configuration. Under a local electric field, vortex switching proceeds via deterministic lateral propagation of vortex–a-domain phase boundaries, resulting in stable domain configurations upon field removal. In stark contrast, thicker PTO10/STO10 superlattices, which host a pure vortex phase, exhibit a volatile switching behavior that elastically relaxes to the ground state. Phase-field simulations further confirm that phase-boundary-mediated pathways provide the necessary flattened energy landscape for topological reconfiguration. These results establish mixed-phase engineering as an effective strategy for nonvolatile control of polar topological textures.
科研通智能强力驱动
Strongly Powered by AbleSci AI