Rinkevich Anatoly B, Perov Dmitry V, Tolmacheva Elena A, Kuznetsov Evgeny A, Nemytova Olga V, Uimin Mikhail A
M.N. Miheev Institute of Metal Physics UB RAS, Sofia Kovalevskaya St., 18, 620108 Ekaterinburg, Russia.
Materials (Basel). 2022 Jul 23;15(15):5124. doi: 10.3390/ma15155124.
The magnetic and microwave properties of nanocomposites containing iron particles encapsulated in a carbon shell (Fe@C), as well as carbon nanotubes (CNT), have been experimentally studied. The examination of magnetic properties of composites shows that the materials under study contain a ferromagnetic component. The availability of ferromagnetic ordering for the dielectric matrix-based nanocomposite sample with Fe@C particles has been confirmed by the measurement results of the transmission and the reflection coefficients of the microwaves, since the ferromagnetic resonance has been observed. Furthermore, in the fields less than the field of ferromagnetic resonance, there are the signs of the presence of ferromagnetic antiresonance. The ferromagnetic resonance leads to minima in the transmission and reflection coefficients, whereas the antiresonance, conversely, leads to maxima in the reflection coefficient. The measurement results have been compared with the theoretical calculations of the field dependence of microwave transmission and reflection coefficients.
对含有包裹在碳壳中的铁颗粒(Fe@C)以及碳纳米管(CNT)的纳米复合材料的磁性和微波特性进行了实验研究。对复合材料磁性的检测表明,所研究的材料含有铁磁成分。由于观察到了铁磁共振,基于含Fe@C颗粒的介电基质纳米复合材料样品的铁磁有序性已通过微波传输和反射系数的测量结果得到证实。此外,在小于铁磁共振场的场中,存在铁磁反共振的迹象。铁磁共振导致传输和反射系数出现最小值,而反共振则相反,导致反射系数出现最大值。已将测量结果与微波传输和反射系数的场依赖性理论计算进行了比较。