Three-dimensional imaging of vortex structure in a ferroelectric nanoparticle driven by an electric field

被引:0
作者
D. Karpov
Z. Liu
T. dos Santos Rolo
R. Harder
P. V. Balachandran
D. Xue
T. Lookman
E. Fohtung
机构
[1] New Mexico State University,Department of Physics
[2] National Research Tomsk Polytechnic University,Department of General Physics, Physical
[3] School of Science,Technical Institute
[4] Harbin Institute of Technology,Condensed Matter Science and Technology Institute
[5] Los Alamos National Laboratory,Institute for Photon Science and Synchrotron Radiation
[6] Karlsruhe Institute of Technology,State Key Laboratory for Mechanical Behavior of Materials
[7] Advanced Photon Source,undefined
[8] Argonne National Laboratory,undefined
[9] Xi’an Jiaotong University,undefined
来源
Nature Communications | / 8卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Topological defects of spontaneous polarization are extensively studied as templates for unique physical phenomena and in the design of reconfigurable electronic devices. Experimental investigations of the complex topologies of polarization have been limited to surface phenomena, which has restricted the probing of the dynamic volumetric domain morphology in operando. Here, we utilize Bragg coherent diffractive imaging of a single BaTiO3 nanoparticle in a composite polymer/ferroelectric capacitor to study the behavior of a three-dimensional vortex formed due to competing interactions involving ferroelectric domains. Our investigation of the structural phase transitions under the influence of an external electric field shows a mobile vortex core exhibiting a reversible hysteretic transformation path. We also study the toroidal moment of the vortex under the action of the field. Our results open avenues for the study of the structure and evolution of polar vortices and other topological structures in operando in functional materials under cross field configurations.
引用
收藏
相关论文
共 50 条
[21]   Determination of the Three-Dimensional Structure of Ferrihydrite Nanoparticle Aggregates [J].
Legg, Benjamin A. ;
Zhu, Mengqiang ;
Comolli, Luis R. ;
Gilbert, Benjamin ;
Banfield, Jillian F. .
LANGMUIR, 2014, 30 (33) :9931-9940
[22]   Imaging Orbital Vortex Lines in Three-Dimensional Momentum Space [J].
Figgemeier, T. ;
Uenzelmann, M. ;
Eck, P. ;
Schusser, J. ;
Crippa, L. ;
Neu, J. N. ;
Geldiyev, B. ;
Kagerer, P. ;
Buck, J. ;
Kallaene, M. ;
Hoesch, M. ;
Rossnagel, K. ;
Siegrist, T. ;
Lim, L. -k. ;
Moessner, R. ;
Sangiovanni, G. ;
Di Sante, D. ;
Reinert, F. ;
Bentmann, H. .
PHYSICAL REVIEW X, 2025, 15 (01)
[23]   Three-Dimensional Target Imaging Based on Vortex Stripmap SAR [J].
Wang, Jianqiu ;
Liu, Kang ;
Cheng, Yongqiang ;
Wang, Hongqiang .
IEEE SENSORS JOURNAL, 2019, 19 (04) :1338-1345
[24]   Three-Dimensional Imaging with Bistatic Vortex Electromagnetic Wave Radar [J].
Liang, Jia ;
Zhang, Qun ;
Luo, Ying ;
Yuan, Hang ;
Chen, Yijun .
REMOTE SENSING, 2022, 14 (13)
[25]   Three-dimensional imaging in degraded visual field [J].
Oran, A. ;
Ozharar, S. ;
Ozdur, I. .
INTERNATIONAL PHYSICS CONFERENCE AT THE ANATOLIAN PEAK (IPCAP2016), 2016, 707
[26]   Three-dimensional magnetic nanoparticle imaging using small field gradient and multiple pickup coils [J].
Sasayama, Teruyoshi ;
Tsujita, Yuya ;
Morishita, Manabu ;
Muta, Masahiro ;
Yoshida, Takashi ;
Enpuku, Keiji .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2017, 427 :144-150
[27]   Three-dimensional driven equilibrium imaging of articular cartilage [J].
Gold, GE ;
Hargreaves, BA ;
Pauly, JM ;
Conolly, S ;
Nishimura, DG .
RADIOLOGY, 2000, 217 :451-452
[28]   Electrooptic measurement of three-dimensional nonuniform electric field [J].
Ihori, H. ;
Uto, S. ;
Arii, K. .
1600, JJAP, Minato-ku, Japan (35)
[29]   Three-dimensional vortex dynamics in a shear-driven rectangular cavity [J].
Chiang, TP ;
Sheu, WH ;
Hwang, RR .
INTERNATIONAL JOURNAL OF COMPUTATIONAL FLUID DYNAMICS, 1997, 8 (03) :201-214
[30]   On three-dimensional vortex patches [J].
Gamblin, P ;
SaintRaymond, X .
BULLETIN DE LA SOCIETE MATHEMATIQUE DE FRANCE, 1995, 123 (03) :375-424