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Nonreciprocal microwave devices based on magnetic nanocomposites made of opal matrices

机译:基于蛋白石基质的磁性纳米复合材料的不可逆微波设备

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Microwave circulators based on magnetic nanocomposites made of opal matrices are mathematically simulated and experimentally studied. Mathematical models are based on the solution of the 3D diffraction problems using the projection method and the decomposition computational algorithm that employs autonomous units with magnetic nanoinclusions and virtual Floquet channels. The computational algorithm developed using the projection method with effective parameters of the magnetic nanocomposite is used to calculate the S parameters of the scattering matrix of the microwave Y circulator based on the opal-matrix magnetic nanocomposite. The S parameters (real loss, isolation between arms, and reflection coefficient) of the Y circulator are measured for several nanocomposites made of opal matrices with magnetic nanoparticles (Co0.5Zn0.5Fe2O4 and Ni0.5Zn0.5Fe2O4) and compared with the parameters of the circulator based on magnesium-manganese ferrite in a frequency interval of 14-18 GHz. The simulated results are compared with the experimental dependences.
机译:基于蛋白石基质的磁性纳米复合材料的微波循环器经过数学模拟和实验研究。数学模型基于使用投影方法的3D衍射问题的解决方案和分解计算算法,该算法采用具有磁性纳米夹杂物和虚拟Floquet通道的自治单元。利用投影法开发的具有磁性纳米复合材料有效参数的计算算法,基于蛋白石磁性纳米复合材料,计算了微波Y循环器散射矩阵的S参数。测量了几种由蛋白石与磁性纳米颗粒(Co0.5Zn0.5Fe2O4和Ni0.5Zn0.5Fe2O4)组成的蛋白石制成的纳米复合材料的Y循环器的S参数(实际损耗,臂之间的隔离度和反射系数),并与基于镁锰铁氧体的循环器,频率间隔为14-18 GHz。仿真结果与实验相关性进行了比较。

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