期刊
MATERIALS
卷 11, 期 1, 页码 -出版社
MDPI
DOI: 10.3390/ma11010018
关键词
magneto-electric; ferromagnetic; ferroelectric; multiferroic; composites
类别
资金
- Army Research Office [W911NF1210545]
- National Science Foundation [ECCS-1337716, 1307714]
- National Natural Science Foundation of China [61503344]
- Russian Science Foundation [16-12-10158]
- Directorate For Engineering
- Div Of Electrical, Commun & Cyber Sys [1307714] Funding Source: National Science Foundation
- Russian Science Foundation [16-12-10158] Funding Source: Russian Science Foundation
Ferromagnetic-ferroelectric nanocomposites are of interest for realizing strong strain-mediated coupling between electric and magnetic subsystems due to a high surface area-to-volume ratio. This report is on the synthesis of nickel ferrite (NFO)-barium titanate (BTO) core-shell nanofibers, magnetic field assisted assembly into superstructures, and studies on magneto-electric (ME) interactions. Electrospinning techniques were used to prepare coaxial fibers of 0.5-1.5 micron in diameter. The core-shell structure of annealed fibers was confirmed by electron microscopy and scanning probe microscopy. The fibers were assembled into discs and films in a uniform magnetic field or in a field gradient. Studies on ME coupling in the assembled films and discs were done by magnetic field (H)-induced polarization, magneto-dielectric effects at low frequencies and at 16-24 GHz, and low-frequency ME voltage coefficients (MEVC). We measured similar to 2-7% change in remnant polarization and in the permittivity for H = 7 kOe, and a MEVC of 0.4 mV/cm Oe at 30 Hz. A model has been developed for low-frequency ME effects in an assembly of fibers and takes into account dipole-dipole interactions between the fibers and fiber discontinuity. Theoretical estimates for the low-frequency MEVC have been compared with the data. These results indicate strong ME coupling in superstructures of the core-shell fibers.
作者
我是这篇论文的作者
点击您的名字以认领此论文并将其添加到您的个人资料中。
推荐
暂无数据