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利用垂直磁化 L10-FePd 自由层的磁性隧道结检测毫米波的电信号。

Electrical detection of millimeter-waves by magnetic tunnel junctions using perpendicular magnetized L10-FePd free layer.

机构信息

Department of Applied Physics, Graduate School of Engineering, Tohoku University , Sendai 980-8579, Japan.

出版信息

Nano Lett. 2015 Jan 14;15(1):623-8. doi: 10.1021/nl504114v. Epub 2015 Jan 2.

Abstract

Spin dynamics excited by spin-polarized current in magnetic tunnel junctions (MTJs) is potentially useful in nanoscale electrical oscillation sources and detection devices. A spin oscillator/detector should work at a high frequency, such as that of a millimeter-wave, where the quality of a semiconductor device is restricted by carrier mobility, the CR time constant, and so on. Developers of spin systems for practical use need to find out how to excite spin dynamics (i) in the millimeter-wave region, (ii) with low power consumption (ex: no external magnetic field, low damping material), and (iii) for broad frequency modulation. Here L10-ordered FePd alloy with perpendicular magnetocrystalline anisotropy (PMA) and a low damping constant, 0.007, was used for the free layer in the MTJs, and a homodyne-detected ferromagnetic resonance (FMR) signal was obtained at around 30 GHz together with the possibility of one-octave frequency modulation. The FMR signal in out-of-plane magnetized L10-ordered FePd free layer could be excited without an external magnetic field by injecting in-plane spin polarized alternating current. This study shows the potential utility of L10-ordered alloy materials such as FePt, CoPt, MnAl, and MnGa in a variety of millimeter-wave spin devices.

摘要

在磁性隧道结 (MTJ) 中,由自旋极化电流激发的自旋动力学在纳米级电振荡源和检测器件中具有潜在的应用价值。自旋振荡器/探测器应在高频下工作,例如毫米波,在这种情况下,半导体器件的性能受到载流子迁移率、CR 时间常数等因素的限制。为了实际应用而开发的自旋系统的开发者需要找出如何在(i)毫米波区域、(ii)低功耗(例如无外加磁场、低阻尼材料)、(iii)宽频率调制下激发自旋动力学。这里使用了具有垂直磁各向异性 (PMA) 和低阻尼常数 0.007 的 L10 有序 FePd 合金作为 MTJ 的自由层,并在 30GHz 左右获得了同相检波铁磁共振 (FMR) 信号,同时还实现了一个倍频程的频率调制。通过注入平面内自旋极化交流电,无需外加磁场即可激发面外磁化 L10 有序 FePd 自由层中的 FMR 信号。本研究表明 L10 有序合金材料(如 FePt、CoPt、MnAl 和 MnGa)在各种毫米波自旋器件中具有潜在的应用价值。

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