Sudsom Devika, Ehrmann Andrea
Faculty of Engineering and Mathematics, Bielefeld University of Applied Sciences, 33619 Bielefeld, Germany.
Nanomaterials (Basel). 2021 Feb 1;11(2):349. doi: 10.3390/nano11020349.
Combining clusters of magnetic materials with a matrix of other magnetic materials is very interesting for basic research because new, possibly technologically applicable magnetic properties or magnetization reversal processes may be found. Here we report on different arrays combining iron and nickel, for example, by surrounding circular nanodots of one material with a matrix of the other or by combining iron and nickel nanodots in air. Micromagnetic simulations were performed using the OOMMF (Object Oriented MicroMagnetic Framework). Our results show that magnetization reversal processes are strongly influenced by neighboring nanodots and the magnetic matrix by which the nanodots are surrounded, respectively, which becomes macroscopically visible by several steps along the slopes of the hysteresis loops. Such material combinations allow for preparing quaternary memory systems, and are thus highly relevant for applications in data storage and processing.
将磁性材料簇与其他磁性材料基质相结合,对于基础研究而言非常有趣,因为可能会发现新的、或许具有技术应用价值的磁性特性或磁化反转过程。例如,在这里我们报告了不同的铁镍组合阵列,通过用另一种材料的基质包围一种材料的圆形纳米点,或者在空气中将铁和镍纳米点相结合。使用OOMMF(面向对象微磁框架)进行了微磁模拟。我们的结果表明,磁化反转过程分别受到相邻纳米点以及纳米点所包围的磁性基质的强烈影响,这在磁滞回线斜率上的几个步骤中宏观可见。这种材料组合能够制备四元存储系统,因此对于数据存储和处理应用具有高度相关性。