effect of low-frequency ac magnetic susceptibility and magnetic properties of cofeb/mgo/cofeb magnetic tunnel junctions

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ID: 145908
2014
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Ranked #122 of 133 articles by views in progress in neuro-psychopharmacology & biological psychiatry

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Abstract
In this investigation, the low-frequency alternate-current (AC) magnetic susceptibility (χac) and hysteresis loop of various MgO thickness in CoFeB/MgO/CoFeB magnetic tunneling junction (MTJ) determined coercivity (Hc) and magnetization (Ms) and correlated that with χac maxima. The multilayer films were sputtered onto glass substrates and the thickness of intermediate barrier MgO layer was varied from 6 to 15 Å. An experiment was also performed to examine the variation of the highest χac and maximum phase angle (θmax) at the optimal resonance frequency (fres), at which the spin sensitivity is maximal. The results reveal that χac falls as the frequency increases due to the relationship between magnetization and thickness of the barrier layer. The maximum χac is at 10 Hz that is related to the maximal spin sensitivity and that this corresponds to a MgO layer of 11 Å. This result also suggests that the spin sensitivity is related to both highest χac and maximum phase angle. The corresponding maximum of χac is related to high exchange coupling. High coercivity and saturation magnetization contribute to high exchange-coupling χac strength.
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chen2014nanomaterialseffect Use this key to autocite in the manuscript while using SciMatic Manuscript Manager or Thesis Manager
Authors ;Yuan-Tsung Chen;Sung-Hao Lin;Tzer-Shin Sheu
Journal progress in neuro-psychopharmacology & biological psychiatry
Year 2014
DOI
10.3390/nano4010046
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