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基于进动动力学的磁弹调制的压电衬底上单磁致伸缩纳米磁体中的混合磁动力学模式。

Hybrid Magnetodynamical Modes in a Single Magnetostrictive Nanomagnet on a Piezoelectric Substrate Arising from Magnetoelastic Modulation of Precessional Dynamics.

机构信息

Department of Condensed Matter Physics and Material Sciences , S. N. Bose National Centre for Basic Sciences , Block JD, Sector III, Salt Lake, Kolkata 700106 , India.

Department of Electrical and Computer Engineering , Virginia Commonwealth University , Richmond , Virginia 23284 , United States.

出版信息

ACS Appl Mater Interfaces. 2018 Dec 19;10(50):43970-43977. doi: 10.1021/acsami.8b19243. Epub 2018 Dec 4.

Abstract

Magnetoelastic (or "straintronic") switching has emerged as an extremely energy-efficient mechanism for switching the magnetization of magnetostrictive nanomagnets in magnetic memory and logic, and non-Boolean circuits. Here, we investigate the ultrafast magnetodynamics associated with straintronic switching in a single quasielliptical magnetostrictive Co nanomagnet deposited on a piezoelectric Pb(MgNb)O-PbTiO substrate using time-resolved magneto-optical Kerr effect (TR-MOKE) measurements. The pulsed laser pump beam in the TR-MOKE plays a dual role: it causes precession of the nanomagnet's magnetization about an applied bias magnetic field and it also generates surface acoustic waves in the piezoelectric substrate that produce periodic strains in the magnetostrictive nanomagnet and modulate the precessional dynamics. This modulation gives rise to intriguing hybrid magnetodynamical modes in the nanomagnet, with a rich spin-wave texture. The characteristic frequencies of these modes are 5-15 GHz, indicating that strain can affect magnetization in a magnetostrictive nanomagnet in time scales much smaller than 1 ns (∼100 ps). This can enable ∼10 GHz range magnetoelastic nano-oscillators that are actuated by strain instead of a spin-polarized current, as well as ultrafast magnetoelectric generation of spin waves for magnonic logic circuits, holograms, etc.

摘要

磁弹(或“应变电子”)切换已成为一种极其节能的机制,可用于切换磁性存储器和逻辑电路以及非布尔电路中磁致伸缩纳米磁铁的磁化状态。在这里,我们使用时间分辨磁光克尔效应(TR-MOKE)测量研究了单个准椭圆磁致伸缩 Co 纳米磁铁在压电 Pb(MgNb)O-PbTiO 衬底上的应变电子切换相关的超快磁动力学。TR-MOKE 中的脉冲激光泵浦光束起着双重作用:它导致纳米磁铁的磁化围绕外加偏置磁场进动,并且它还在压电衬底中产生表面声波,从而在磁致伸缩纳米磁铁中产生周期性应变并调制进动动力学。这种调制导致纳米磁铁中出现有趣的混合磁动力学模式,具有丰富的自旋波纹理。这些模式的特征频率为 5-15 GHz,表明应变可以在小于 1 ns(约 100 ps)的时间尺度上影响磁致伸缩纳米磁铁中的磁化。这可以实现由应变而不是自旋极化电流驱动的约 10 GHz 范围内的磁弹性纳米振荡器,以及用于磁子逻辑电路、全息图等的超快磁电自旋波产生。

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