| Literature DB >> 29498510 |
Guohua Dong1, Ziyao Zhou1, Mengmeng Guan1, Xu Xue1, Mingfeng Chen2, Jing Ma2, Zhongqiang Hu1, Wei Ren1, Zuo-Guang Ye3, Ce-Wen Nan2, Ming Liu1.
Abstract
Traditional magnetostrictive/piezoelectric laminated composites rely on the two-dimensional interface that transfers stress/strain to achieve the large magnetoelectric (ME) coupling, nevertheless, they suffer from the theoretical limitation of the strain effect and of the substrate clamping effect in real ME applications. In this work, 3D NZFO/BTO-pillar nanocomposite films were grown on SrTiO3 by template-assisted pulsed laser deposition, where BaTiO3 (BTO) nanopillars appeared in an array with distinct phase transitions as the cores were covered by NiZn ferrite (NZFO) layer. The perfect 3D heteroepitaxial interface between BTO and NZFO phases can be identified without any edge dislocations, which allows effective strain transfer at the 3D interface. The 3D structure nanocomposites enable the strong two magnon scattering (TMS) effect that enhances ME coupling at the interface and reduces the clamping effect by strain relaxation. Thereby, a large FMR field shift of 1866 Oe in NZFO/BTO-pillar nanocomposite was obtained at the TMS critical angle near the BTO nanopillars phase transition of 255 K.Entities:
Keywords: 3D nanostructure; ferromagnetic resonance; magnetoelectric coupling; multiferroic; spinel ferrite
Year: 2018 PMID: 29498510 DOI: 10.1021/acsnano.8b00962
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881