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STRUCTURE AND MAGNETIC PROPERTY OF FeAl_2O_4 SYNTHESIZED BY MICROWAVE HEATING

机译:微波加热合成FEAL_2O_4的结构和磁性

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Most of microwave energy transforms into thermal energy, and chemical reactions are driven by thermal energy. In the past decade, however, many studies have been reported about "microwave effect", which is difficult to explain by thermodynamics, e.g., decrystallization of the ferromagnetic materials, creating the supersaturated solid solutions, etc. In particular, it is noteworthy of the antiferromagnetic-ferromagnetic transition of a spinel ferrite. Although it is known that the microwave magnetic field (H-field) plays an important role in this process, the details are still not clear. In previous work, FeAl_2O_4, which is a typical antiferromagnetic spinel, was synthesized using single-mode 2.45 GHz microwave H-field irradiation and the effect of the magnetic fields on magnetic characteristics of antiferromagnetic oxide was studied. However, the authors do not reach to reveal a basic mechanism of decreasing the crystal diameter (increasing the grain boundaries) by microwave irradiation. In the study, to examine the effect of the ratio of γ-Fe_2O_3 in starting materials for the change of magnetic properties by microwave H-field irradiation, FeAl_2O_4 is synthesized from 90 wt% Fe203-10 wt% Al_2O_3 mixed powder.
机译:大多数微波能量转变成热能,和化学反应都通过热能驱动。在过去的十年,然而,许多研究已经报道了铁磁材料的“微波效应”,这是很难用热力学来解释,例如,消晶,创造了过饱和固溶体等,特别值得注意的是的尖晶石铁素体的反铁磁性铁磁过渡。虽然众所周知,微波炉的磁场(H场)在这一过程中起重要作用,细节尚不清楚。在以前的工作中,FeAl_2O_4,这是一个典型的反铁尖晶石,使用单模2.45GHz微波H场照射,并研究了在反铁磁性氧化物的磁特性的磁场的作用来合成。然而,作者没有达到揭示减小晶体直径通过微波辐射(增加晶界)的基本机制。在研究中,以检查在起始材料的磁特性的微波H场照射的变化γ-Fe_2O_3的比率的影响,FeAl_2O_4从90重量%Fe203-10重量%Al_2O_3的混合粉末合成。

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