Interwire and Intrawire Magnetostatic Interactions in Fe-Au Barcode Nanowires with Alternating Ferromagnetically Strong and Weak Segments

Authors
Samardak, Aleksei YuJeon, Yoo SangSamardak, Vadim YuKozlov, Alexey G.Rogachev, Kirill A.Ognev, Alexey, VJeong, EunjinKim, Gyu WonKo, Min JunSamardak, Alexander S.Kim, Young Keun
Issue Date
2022-11
Publisher
Wiley - V C H Verlag GmbbH & Co.
Citation
Small, v.18, no.47
Abstract
Metallic barcode nanowires (BNWs) composed of repeating heterogeneous segments fabricated by template-assisted electrodeposition can offer extended functionality in magnetic, electrical, mechanical, and biomedical applications. The authors consider such nanostructures as a 3D system of magnetically interacting elements with magnetic behavior strongly affected by complex magnetostatic interactions. This study discusses the influence of geometrical parameters of segments on the character of their interactions and the overall magnetic behavior of the array of BNWs having alternating magnetization, because the Fe and Au segments are made of Fe-Au alloys with high and low magnetizations. By controlling the applied current densities and the elapsed time in the electrodeposition, the dimension of the Fe-Au BNWs can be regulated. This study reveals that the influence of the length of magnetically weak Au segments on the interaction field between nanowires is different for samples with magnetically strong 100 and 200 nm long Fe segments using the first-order reversal curve (FORC) diagram method. With the help of micromagnetic simulations, three types of magnetostatic interactions in the BNW arrays are discovered and analy. This study demonstrates that the dominating type of interaction depends on the geometric parameters of the Fe and Au segments and the interwire and intrawire distances.
Keywords
MAGNETIC NANOWIRES; barcode nanowires; first-order reversal curve; magnetic force microscopy; magnetic vortexes; magnetostatic interactions; micromagnetic simulations
ISSN
1613-6810
URI
https://pubs.kist.re.kr/handle/201004/114415
DOI
10.1002/smll.202203555
Appears in Collections:
KIST Article > 2022
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