论文标题

激光引起的磁化磁力强度磁力化的磁力弹性域的磁弹性域/batio $ _3 $复合

Laser-induced magnetization precession in individual magnetoelastic domains of a multiferroic CoFeB/BaTiO$_3$ composite

论文作者

Shelukhin, L. A., Pertsev, N. A., Scherbakov, A. V., Kazenwadel, D. L., Kirilenko, D. A., Hämäläinen, S. J., van Dijken, S., Kalashnikova, A. M.

论文摘要

使用带有微米空间分辨率的磁光泵探针技术,我们表明,磁化强度可以通过Co $ _ {40} $ _ {40} $ _ {40} $ _ {40} $ _ {40} $ b $ _ {20} $(COFEB)层的单个磁性域发射。进动参数对外部磁场强度和方向的依赖性表明,通过激光诱导的COFEB磁弹性耦合参数的超快部分淬火率$ \ $ \ $ \ $ 27%,以及10%的超快消灭磁磁触发磁化强度的驱虫。激光诱导的磁弹性耦合的减少与n $ \ $ 2的$ n(n+1)/2 $ -LAW近似于磁弹性耦合之间的关系。该对应关系证实了激光诱导的各向异性变化的热来源。基于激发进动的分析和建模,我们发现激光诱导的进型切换的特征,这是在沿硬磁化轴施加磁场并且其值接近有效磁弹性各向异性各向异性场时发生的。发现单个磁弹性结构域中的进动激发过程不受相邻域的影响。这使激光诱导的磁弹性各向异性变化成为驱动磁化动力学和具有空间选择性复合多效率的有前途的工具。

Using a magneto-optical pump-probe technique with micrometer spatial resolution we show that magnetization precession can be launched in individual magnetic domains imprinted in a Co$_{40}$Fe$_{40}$B$_{20}$ (CoFeB) layer by elastic coupling to ferroelectric domains in a BaTiO$_{3}$ substrate. The dependence of the precession parameters on external magnetic field strength and orientation reveal that by laser-induced ultrafast partial quenching of the magnetoelastic coupling parameter of CoFeB by $\approx$27% along with 10% ultrafast demagnetization trigger the magnetization precession. The relation between the laser-induced reduction of the magnetoelastic coupling and the demagnetization is approximated by the $n(n+1)/2$-law with n$\approx$2. This correspondence confirms the thermal origin of the laser-induced anisotropy change. Based on the analysis and modeling of the excited precession we find signatures of laser-induced precessional switching, which occurs when the magnetic field is applied along the hard magnetization axis and its value is close to the effective magnetoelastic anisotropy field. The precession excitation process in an individual magnetoelastic domain is found to be unaffected by neighboring domains. This makes laser-induced changes of magnetoelastic anisotropy a promising tool for driving magnetization dynamics and switching in composite multiferroics with spatial selectivity.

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