材料科学
纳米复合材料
复合数
压电
纳米颗粒
复合材料
磁性纳米粒子
聚合物
磁电效应
能量收集
磁场
电压
纳米技术
光电子学
多铁性
铁电性
能量(信号处理)
电气工程
统计
物理
数学
工程类
量子力学
电介质
作者
Alexander Omelyanchik,Valentina Antipova,Christina Gritsenko,Valeria Kolesnikova,Dmitry Murzin,Yilin Han,Andrei V. Turutin,Ilya V. Kubasov,Alexander M. Kislyuk,Т. S. Ilina,Д. А. Киселев,M. I. Voronova,М. Д. Малинкович,Yu. N. Parkhomenko,Maxim V. Silibin,Elena N. Kozlova,Davide Peddis,Kateryna Levada,L.A. Makarova,А. А. Амиров
出处
期刊:Nanomaterials
[Multidisciplinary Digital Publishing Institute]
日期:2021-04-28
卷期号:11 (5): 1154-1154
被引量:69
摘要
Polymer-based magnetoelectric composite materials have attracted a lot of attention due to their high potential in various types of applications as magnetic field sensors, energy harvesting, and biomedical devices. Current researches are focused on the increase in the efficiency of magnetoelectric transformation. In this work, a new strategy of arrangement of clusters of magnetic nanoparticles by an external magnetic field in PVDF and PFVD-TrFE matrixes is proposed to increase the voltage coefficient (αME) of the magnetoelectric effect. Another strategy is the use of 3-component composites through the inclusion of piezoelectric BaTiO3 particles. Developed strategies allow us to increase the αME value from ~5 mV/cm·Oe for the composite of randomly distributed CoFe2O4 nanoparticles in PVDF matrix to ~18.5 mV/cm·Oe for a composite of magnetic particles in PVDF-TrFE matrix with 5%wt of piezoelectric particles. The applicability of such materials as bioactive surface is demonstrated on neural crest stem cell cultures.
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