TY - JOUR
T1 - Ultrahigh-density nested polar nanovortices with independently controllable conduction for ferroelectric memristor
AU - Taazayet, Wael Ben
AU - Wang, Jing
AU - Zhang, Yixuan
AU - Qu, Shuangquan
AU - Yang, Huayu
AU - Fan, Yuanyuan
AU - Han, Haojie
AU - Ma, Jing
AU - Shao, Ruiwen
AU - Huang, Houbing
AU - Nan, Ce Wen
N1 - Publisher Copyright:
Copyright © 2025 The Authors, some rights reserved;
PY - 2025/8
Y1 - 2025/8
N2 - Ferroelectric vortices have received much attention in the past decade due to their functionalities and potential applications in nanoelectronics. However, most of the vortices fabricated in the nanoislands have a size of more than a hundred nanometers, which limits the miniaturization of electronic devices. Here, we show the realization of a high-density vortex lattice with ~10- to 20-nanometer size in ultrathin bismuth ferrite/barium titanate bilayer by strain engineering. The obtained vortex shows a nested structure, e.g., an outer center-type structure with a nested inner ring included, which is well supported by piezoelectric force microscopy, transmission electron microscopy, and phase-field simulations. The nested vortex structure is not only more stable than the center-type vortex structure but also exhibits controllable multistate conduction with low energy consumption (<100 zeptojoules, e.g., 10−19 joules), good stability (>1 year), and high endurance. This is of great interest for high-density [~2 terabits per square inch (3100 terabits per square meter)] ferroelectric memristor conception for neuromorphic computing.
AB - Ferroelectric vortices have received much attention in the past decade due to their functionalities and potential applications in nanoelectronics. However, most of the vortices fabricated in the nanoislands have a size of more than a hundred nanometers, which limits the miniaturization of electronic devices. Here, we show the realization of a high-density vortex lattice with ~10- to 20-nanometer size in ultrathin bismuth ferrite/barium titanate bilayer by strain engineering. The obtained vortex shows a nested structure, e.g., an outer center-type structure with a nested inner ring included, which is well supported by piezoelectric force microscopy, transmission electron microscopy, and phase-field simulations. The nested vortex structure is not only more stable than the center-type vortex structure but also exhibits controllable multistate conduction with low energy consumption (<100 zeptojoules, e.g., 10−19 joules), good stability (>1 year), and high endurance. This is of great interest for high-density [~2 terabits per square inch (3100 terabits per square meter)] ferroelectric memristor conception for neuromorphic computing.
UR - https://www.scopus.com/pages/publications/105012910361
U2 - 10.1126/sciadv.adx0372
DO - 10.1126/sciadv.adx0372
M3 - Article
C2 - 40749066
AN - SCOPUS:105012910361
SN - 2375-2548
VL - 11
JO - Science advances
JF - Science advances
IS - 31
M1 - eadx0372
ER -