混合量子磁系统静磁模的有限元建模

Maksut Maksutogğlu, Elif Avinca, Farkhad Zainullin, K. Çinar, S. Yorulmaz, Sergiy Tarapov, F. Yildiz, B. Rameev
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引用次数: 0

摘要

在这项工作中,我们表明,由于二维微波谐振器和YIG晶体之间的耦合而激发的静磁(MS)磁振子模式(即波长远大于交换长度的自旋波)可以通过使用有限元方法软件(例如,CST Studio Suite或Comsol MP)有效地建模。钇铁石榴石(YIG)是一种铁磁绝缘体,不仅对毫微米透明,而且对光通信频率透明。它还具有非常低的阻尼参数-从潜在应用的角度来看,这是一个有利的特性。然而,由于均匀模态或质模态导致YIG在共振附近的EM特性具有非常高的非线性,因此在FEM建模中出现了这种好处。我们发现通过人为地增加模型材料的阻尼常数(YIG)可以加速有限元计算。我们的有限元模拟研究结果与实验结果非常吻合。与实验数据完全一致,我们的模型研究揭示了YIG晶体和微波谐振器之间的强耦合,在模式的色散曲线中观察到。我们演示了强耦合机制的实现,这对HQS的实现尤其重要。
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FEM Modelling of Magnetostatic Modes in Hybrid Quantum Magnonic Systems
In this work, we show that the magnetostatic (MS) magnon modes (i.e., the spinwaves with wavelengths much larger than the exchange length), which are excited as a result of the coupling between the 2D microwave resonator and the YIG crystal, can be efficiently modeled by use of finite element method software (e.g., CST Studio Suite or Comsol MP). Yttrium iron garnet (YIG) has been used as a model material, which is a ferrimagnetic insulator transparent not only to MW but also to optical and telecommunication frequencies. It also has a very low damping parameter — a property advantageous from the point of view of potential applications. However, this benefit turns out in an issue in the FEM modeling because of the very high non-linearity in the EM properties of YIG near resonances due to uniform or MS modes. We found that it is possible to accelerate the FEM calculations by artificially increasing the damping constant of the model material (YIG). Our FEM modeling studies reveal an excellent agreement with experimental results. In full agreement with experimental data, our modeling study reveals a strong coupling between the YIG crystal and the microwave resonator, observed in the dispersion curves of the modes. We demonstrate the realization of the strong coupling regime, which is especially important for HQS implementations.
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