| Literature DB >> 29535411 |
Duy-Truong Quach1,2,3, Duc-Thang Pham4, Duc-The Ngo5, The-Long Phan6, Seung-Young Park7, Sang-Hyuk Lee8, Dong-Hyun Kim9.
Abstract
Hysteresis of ferromagnetic system exhibits a fundamental stimulus-response behavior, thereby casting all the important macromagnetic system parameters such as coercivity, nucleation field, saturation magnetization, and hysteresis loss. Recently, increasing attention has been paid to exploration of relatively less understood minor loop behavior, since faster operation of magnetic devices is inevitably accompanied by minor hysteresis behavior from cycling among unsaturated ferromagnetic states. Here, we report our microscopic investigation of unusual minor hysteresis loop behavior, represented by rounded or sharpened response of minor hysteresis loop of (CoFeB/Pd)4 multilayer film. It is observed that rounded and sharpened response in the minor hysteresis response could be manifested under proper conditions. The minor loop behavior has been systematically investigated by direct microscopic magnetic domain observation using magneto-optical Kerr microscopy. The rounded response of magnetization at the reversing external field along the minor hysteresis curve, so far neglected or considered as one of 'unusual' behaviors, has been found to be elaborately controllable by tuning the reversing field strength and the field sweep rate for multilayers with low repeat numbers. Variable roundedness of the minor hysteresis loop is understandable based on the analysis of magnetic domain dynamics such as domain nucleation and the domain wall velocity.Entities:
Year: 2018 PMID: 29535411 PMCID: PMC5849688 DOI: 10.1038/s41598-018-22810-y
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Minor loop features. Major hysteresis loop and two representative minor loops with different H (−45 and −50 Oe) but the same sweep rate of 12.5 Oe/s. A sharp corner (A) and a regions exhibiting rounded response (A-B-C) are noted by arrows. ΔM and ΔM are denoted for the case of H = −50 Oe.
Figure 2Effect of reversing field change. (a) A major loop and several minor loops with variation of H to be (b) −47.5, (c) −45, (d) −42.5, (e) −40, and (f) −37.5 Oe under the same sweep rate of 2.5 Oe/s. (g) ΔM, ΔM and ΔM/ΔM with respect to H at the sweep rate of 2.5 Oe/s.
Figure 3General appearance of minor loop behavior. Minor loops with variation of sweep rate (a) under the fixed H = −40 Oe and (b) −45 Oe. Sweep rate dependence of ΔM (open square), ΔM (open circle) and ΔM/ΔM (solid triangle) at (c) H = −40 Oe and (d) −45 Oe.
Figure 4Minor loop and magnetic domains. Minor loops with H = −40 Oe for different sweep rate of (a) 2 Oe/s and (b) 5 Oe/s. Corresponding magnetic domains for different points along the minor loops from A-F are illustrated. Scale bars are in the figure.
Figure 5Sweep-rate dependent major loop and nucleation. (a) Major loops measured at various sweep rates from 0.5 to 62.5 Oe/s. (b) Nucleation field as a function of sweep rate (open square). Dashed line is a fitting by Eq. (1). The inset is the same graph on a log-log scale.