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News for our work about magnetic dynamics in a chiral helimagnet MnNb3S6, recently published in SCPMA

研究论文 | 手性螺旋磁体MnNb3S6中拓扑自旋结构的动力学表征

《中国科学:物理学 力学 天文学》英文版(SCIENCE CHINA Physics, Mechanics & Astronomy, SCPMA)出版南京大学刘荣华陈丽娜和中国科学院合肥物质科学研究院张蕾团队合作成果,文章题为“Temperature- and field angular-dependent helical spin period characterized by magnetic dynamics in a chiral helimagnet MnNb3S6”,于2023年第66卷第1期刊出。

手性螺旋磁体具有多种拓扑自旋结构组态(磁孤子),呈现出丰富的新奇物理性质,且能通过温度与外加磁场对其进行调控。这不仅为拓扑电子和磁性的研究提供了一个有趣的物理平台,而且其新奇物理效应在新型自旋电子学器件方面也存在潜在应用。相比于螺旋磁体CrNb3S6Tc~130 K),MnNb3S6具有磁有序温度低(Tc ~ 45 K),磁相互作用弱和螺旋自旋周期调制弱等特点,目前利用洛伦兹透射电镜测量技术仍然很难直接表征MnNb3S6的螺旋自旋空间结构。因此,迫切需要一种高灵敏度的可替代技术来捕捉MnNb3S6的螺旋周期信息及其随外磁场和温度的变化规律。
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本文利用宽频微分铁磁共振技术研究了单轴手性磁性单晶体MnNb3S6中几类特殊自旋结构的磁动力学特性。在高场铁磁态下,其振荡频率与共振磁场的色散曲线很好地符合单一铁磁态下标准基特尔磁动力学模型。对于低磁场手性磁孤子晶格态偏离标准基特尔模型,本文基于螺旋自旋序和铁磁序混合构型,提出了一类修正的基特尔自旋动力学模型。该修正模型能很好地拟合实验获得的磁动力学中自旋共振磁场与磁场角度的依赖关系。此外,通过拟合这类自旋共振行为随温度和磁场角度的变化关系,还能获得MnNb3S6中拓扑自旋序的占比以及螺旋周期L(H)/L(0)随磁场变化的依赖关系,而不需要精细复杂的洛伦兹显微成像技术的辅助。因此,本文方法适用于大多数磁学实验室研究这类拓扑手性磁体的非平庸自旋结构以及相应的自旋动力学。

创新要点:

为解决目前MnNb3S6中螺旋自旋周期仍未被表征的难题,本文基于螺旋自旋序和铁磁序的混合构型,提出了一类修正的基特尔自旋动力学模型。该修正模型能很好地拟合实验获得的磁动力学中自旋共振磁场与磁场角度的依赖关系。通过该自旋动力学方法,本文不仅能够提取螺旋磁体的螺旋周期信息,还能获得其螺旋周期随温度和外加磁场大小、角度的依赖关系相图。本文研究结果将有助于研究人员利用自旋动力学手段来探索非平庸拓扑螺旋磁体中的新奇物理效应及其在自旋电子器件方面的应用。

原文信息:
L. Li, H. Li, K. Zhou, Y. Gu, Q. Fu, L. Chen, L. Zhang, and R. Liu, Temperature- and field angular-dependent helical spin period characterized by magnetic dynamics in a chiral helimagnet MnNb3S6, Sci. China-Phys. Mech. Astron. 66, 217511 (2023), https://doi.org/10.1007/s11433-022-1948-9

 

 

 

Dissertation defense

  • Mr. Zhengyu Gao attended the mid-term examination on Ph.D.
  • Mr. Zui Tao attended the mid-term examination on Master degree.

Current-driven magnetization dynamics and its correlation with magnetization configurations in perpendicularly magnetized tunnel junctions

Our new work entitled “Current-driven magnetization dynamics and its correlation with magnetization configurations in perpendicularly magnetized tunnel junctions” is published in J. Appl. Phys. [J. Appl. Phys. 132, 173906 (2022)]. In this work, we study spin-transfer-torque-driven magnetization dynamics of a perpendicular magnetic tunnel junction nanopillar. Through the combined investigations on spin-torque ferromagnetic resonance and microwave spectroscopy, it is found that the free layer (FL) and the weak pinned reference layer (RL) exhibit distinct dynamic behaviors. First, frequency vs field dispersion for the FL and RL shows an opposite trend as the field varies. Second, the FL can support a single spin-wave (SW) mode for both parallel and antiparallel configurations, while the RL exhibits spin-wave excitation only for the antiparallel state. Those two SW modes coexist at the antiparallel state, and their oscillation frequency exhibits a crossover phenomenon with increasing the external magnetic field, which could be helpful in the mutual synchronization of auto-oscillations for SW-based neuromorphic computing.

Observation of topological Hall effect in antiferromagnetic FeRh film

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In collaboration with Prof. Dunhui Wang’s group in our physical department, we published a paper entitled “Observation of topological Hall effect in antiferromagnetic FeRh film”in APL [Applied Physical Letters 115, 022404 (2019)]. Noncollinear magnetic structures can give rise to peculiar Hall effects and hold promise for next-generation spintronic devices. In this work, we report the observation of the topological Hall effect (THE) through electrical transport measurements in antiferromagnetic B2-ordered FeRh thin films grown by sputtering techniques on a MgO (001) substrate. Our results opens the possibility to discover the topological Hall effect in centrosymmetric antiferromagnets in contrast to the widely reported B20-type chiral magnets.

New progress in the dynamical mode coupling and coherence in a nano-oscillator

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 Controlling dynamical mode coupling in magnetic nano-oscillators is essential to improving their microwave spectral properties for rf applications and neuromorphic computing. Progress here is held back by the lack of a suitable platform that provides controlled coupling. This study experimentally demonstrates control of dynamical mode coupling in spin Hall nano-oscillators with perpendicular magnetic anisotropy, by means of temperature, excitation current, and magnetic field. It is established that mode coupling in this system is dominated by thermal magnon-mediated scattering, suggesting fresh approaches to engineering device properties suitable for the desired applications.

Paper published in PRB in collaboration with Prof. Di Wu’s group

PhysRevB.99In collaboration with Prof. Di Wu’s group in our Department,We published a paper entitled “Enhanced spin accumulation in metallic bilayers with opposite spin Hall angles” in PRB [Physical Review B 99, 174406 (2019)].Spin accumulation can be generated via the spin Hall effect in a nonmagnetic material. It was previously found that spin accumulation and associated spintronic phenomena are attenuated in metallic bilayer with opposite spin angles. Here, we investigate the spin Hall magnetoresistance (SMR) in Pt/Y3Fe5O12 (YIG) with a thin W capping layer, in which W and Pt have opposite spin Hall angles. We find an increase of the SMR ratio with a W capping layer thinner than 1.0 nm. According to theoretical simulation, we attribute this phenomenon to the enhancement of the spin accumulation at the Pt/YIG interface, opposite to previous observations. Our findings provide a new approach for generating spin accumulation and associated pure spin current intensity for spintronic applications

Congratulations to Qingwei for the Best Poster Prize at the CPS Fall Meeting

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Qingwei Fu  has been awarded the “Best Poster Prize” at the 2018 Chinese Physical Society Fall Meeting held in Dalian. Congratulations to him!

 

Controlling the Spectral Characteristics of a Spin-Current Auto-Oscillator with an Electric Field

Key Image_NCR1013_LiuWe published a paper entitled “Controlling the Spectral Characteristics of a Spin-Current Auto-Oscillator with an Electric Field” in PR APPLIED [Physical Review Applied 8, 021001 (2017)]. In this work, we demonstrated that the characteristic currents required for the excitation, the intensity and the spectral characteristics of the generated magnetic nano-oscillation can be tuned by the gate voltage, and the effect of electrostatic gating becomes enhanced in the strongly nonlinear oscillation regime. Electric-field modulation of the current-induced magnetization oscillations and spin waves demonstrated in this work can be utilized for frequency mixing, synchronization, and in logic gates in spin wave-based electronic (magnonic) devices.

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