首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Azimuthally Controlled Magnetic and Dielectric Properties of Multiferroic Nanocrystalline Composite by Magnetic Coupling and Charge Hopping
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Azimuthally Controlled Magnetic and Dielectric Properties of Multiferroic Nanocrystalline Composite by Magnetic Coupling and Charge Hopping

机译:磁耦合和电荷跳变的多铁性纳米晶复合材料的方位角控制磁和介电性能

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摘要

Multiferroic composite is an environmentally friendly material with the extraordinary nuiltisusceptible and high storage properties, It is significant to find an effective way for designirig and fabricating high-quality materials. In this context, the BTO/NZFO nanocrystalline multiferroic composite thin films with and without (100) oriented spinel ferrite Were prepared by RE magnetron sputtering: 'The saturation magnetization, coereivity, and initial susceptibility'of composite thin films with (100) Oriented spinel NZFO phase are 1.05, 1.75 to 2.08, and 1.15 times as high as those of the composites without orientation, respectively. The dc conductivity and dielectric loss of the composite thin film with (100) oriented NZFO are 18 and 33.3% lower than those of composite without orientation, respectively. It is exhibited that the magnetic and dielectric properties of the BTO/NZFO multiferroic composite thin films are azimuthally Controlled by distribution of the Zn/Fe O Ni/Fe superexchange coupling and charge hopping between Fe2+-Fe3+ pair, respectively. Obviously, controlling the arrangement of magnetic couplings and charge hopping is an effective route to fabricate the multiferroic composite with the optimal or specific magnetic and dielectric properties.
机译:多铁性复合材料是一种具有优异的易感性和高存储性能的环保材料,寻找一种设计和制造高质量材料的有效方法具有重要意义。在这种情况下,通过RE磁控溅射制备具有和不具有(100)取向尖晶石铁素体的BTO / NZFO纳米晶多铁性复合薄膜:“具有(100)取向尖晶石的复合薄膜的'饱和磁化强度,矫顽力和初始磁化率'” NZFO相分别是无取向复合材料相的1.05、1.75至2.08和1.15倍。 (100)取向NZFO的复合薄膜的直流电导率和介电损耗分别比未取向的复合薄膜的直流电导率和介电损耗低18%和33.3%。结果表明,BTO / NZFO多铁性复合薄膜的磁性和介电特性分别受Zn / Fe O Ni / Fe超交换耦合分布和Fe2 + -Fe3 +对之间的电荷跳跃的影响而受到方位控制。显然,控制磁耦合和电荷跳跃的布置是制造具有最佳或特定磁和介电性能的多铁复合材料的有效途径。

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