TY - JOUR KW - Multiferroic KW - BiFeO3 KW - Depolarization field KW - Domain wall KW - Exchange bias KW - Superlattices AU - Deyang Chen AU - Zuhuang Chen AU - Qian He AU - James D Clarkson AU - Claudy R Serrao AU - Ajay K Yadav AU - Mark E Nowakowski AU - Zhen Fan AU - Long You AU - Xingsen Gao AU - Dechang Zeng AU - Lang Chen AU - Albina Y Borisevich AU - Sayeef Salahuddin AU - Jun-Ming Liu AU - Jeffrey Bokor AB -
A wealth of fascinating phenomena have been discovered at the BiFeO3 domain walls, examples such as domain wall conductivity, photovoltaic effects, and magnetoelectric coupling. Thus, the ability to precisely control the domain structures and accurately study their switching behaviors is critical to realize the next generation of novel devices based on domain wall functionalities. In this work, the introduction of a dielectric layer leads to the tunability of the depolarization field both in the multilayers and superlattices, which provides a novel approach to control the domain patterns of BiFeO3 films. Moreover, we are able to study the switching behavior of the first time obtained periodic 109° stripe domains with a thick bottom electrode. Besides, the precise controlling of pure 71° and 109° periodic stripe domain walls enable us to make a clear demonstration that the exchange bias in the ferromagnet/BiFeO3 system originates from 109° domain walls. Our findings provide future directions to study the room temperature electric field control of exchange bias and open a new pathway to explore the room temperature multiferroic vortices in the BiFeO3 system.
BT - Nano Letters DA - 12/2016 DO - 10.1021/acs.nanolett.6b04512 IS - 1 LA - eng N2 -A wealth of fascinating phenomena have been discovered at the BiFeO3 domain walls, examples such as domain wall conductivity, photovoltaic effects, and magnetoelectric coupling. Thus, the ability to precisely control the domain structures and accurately study their switching behaviors is critical to realize the next generation of novel devices based on domain wall functionalities. In this work, the introduction of a dielectric layer leads to the tunability of the depolarization field both in the multilayers and superlattices, which provides a novel approach to control the domain patterns of BiFeO3 films. Moreover, we are able to study the switching behavior of the first time obtained periodic 109° stripe domains with a thick bottom electrode. Besides, the precise controlling of pure 71° and 109° periodic stripe domain walls enable us to make a clear demonstration that the exchange bias in the ferromagnet/BiFeO3 system originates from 109° domain walls. Our findings provide future directions to study the room temperature electric field control of exchange bias and open a new pathway to explore the room temperature multiferroic vortices in the BiFeO3 system.
PY - 2017 SP - 486 EP - 493 ST - Nano Lett. T2 - Nano Letters TI - Interface Engineering of Domain Structures in BiFeO3 Thin Films VL - 17 SN - 1530-6984 ER -