Islam Md Torikul, Akanda Md Abdus Sami, Pikul Md Abu Jafar, Wang Xiansi
Physics Discipline, Khulna University, Khulna 9208, Bangladesh.
School of Physics and Electronics, Hunan University, Changsha 410082, People's Republic of China.
J Phys Condens Matter. 2021 Dec 23;34(10). doi: 10.1088/1361-648X/ac3f66.
We investigate the magnetization reversal of single-domain magnetic nanoparticle driven by the circularly polarized cosine chirp microwave pulse (CCMP). The numerical findings, based on the Landau-Lifshitz-Gilbert equation, reveal that the CCMP is by itself capable of driving fast and energy-efficient magnetization reversal. The microwave field amplitude and initial frequency required by a CCMP are much smaller than that of the linear down-chirp microwave pulse. This is achieved as the frequency change of the CCMP closely matches the frequency change of the magnetization precession which leads to an efficient stimulated microwave energy absorption (emission) by (from) the magnetic particle before (after) it crosses over the energy barrier. We further find that the enhancement of easy-plane shape anisotropy significantly reduces the required microwave amplitude and the initial frequency of CCMP. We also find that there is an optimal Gilbert damping for fast magnetization reversal. These findings may provide a pathway to realize the fast and low-cost memory device.
我们研究了由圆偏振余弦啁啾微波脉冲(CCMP)驱动的单畴磁性纳米粒子的磁化反转。基于朗道 - 里夫希茨 - 吉尔伯特方程的数值研究结果表明,CCMP本身能够驱动快速且节能的磁化反转。CCMP所需的微波场幅度和初始频率远小于线性下啁啾微波脉冲。之所以能实现这一点,是因为CCMP的频率变化与磁化进动的频率变化紧密匹配,这导致磁性粒子在越过能垒之前(之后)有效地吸收(发射)受激微波能量。我们进一步发现,易平面形状各向异性的增强显著降低了CCMP所需的微波幅度和初始频率。我们还发现,存在一个实现快速磁化反转的最佳吉尔伯特阻尼。这些发现可能为实现快速且低成本的存储器件提供一条途径。