Faculty of Radiophysics, Taras Shevchenko National University of Kyiv, Kyiv 01601, Ukraine.
Sci Rep. 2012;2:478. doi: 10.1038/srep00478. Epub 2012 Jun 28.
Nano-structuring can significantly modify the properties of materials. We demonstrate that size-dependent modification of the spin-wave spectra in magnetic nano-particles can affect not only linear, but also nonlinear magnetic response. The discretization of the spectrum removes the frequency degeneracy between the main excitation mode of a nano-particle and the higher spin-wave modes, having the lowest magnetic damping, and reduces the strength of multi-magnon relaxation processes. This reduction of magnon-magnon relaxation for the main excitation mode leads to a dramatic increase of its lifetime and amplitude, resulting in the intensification of all the nonlinear processes involving this mode. We demonstrate this experimentally on a two-dimensional array of permalloy nano-dots for the example of parametric generation of a sub-harmonic of an external microwave signal. The characteristic lifetime of this sub-harmonic is increased by two orders of magnitude compared to the case of a continuous magnetic film, where magnon-magnon relaxation limits the lifetime.
纳米结构化可以显著改变材料的性质。我们证明,在磁性纳米粒子中,与尺寸相关的自旋波谱的修正不仅会影响线性,还会影响非线性磁响应。谱的离散化消除了纳米粒子的主要激发模式与具有最低磁阻尼的较低自旋波模式之间的频率简并性,并降低了多磁子弛豫过程的强度。这种主激发模式的磁子-磁子弛豫的减少导致其寿命和幅度的急剧增加,从而增强了所有涉及该模式的非线性过程。我们通过二维坡莫合金纳米点阵列的实验证明了这一点,例如外部微波信号的次谐波的参数生成。与连续磁性薄膜相比,这种次谐波的特征寿命增加了两个数量级,其中磁子-磁子弛豫限制了寿命。