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High Density Nanostructured Soft Ferrites Prepared by High Pressure Field Assisted Sintering Technique

机译:高压场辅助烧结技术制备的高密度纳米结构软铁氧体

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The synthesis of highly compacted, nanostructured soft magnets is highly desirable due to their promising properties for the development of electronic devices working at frequency higher than 2 MHz. In this work we investigated the potentiality of High Pressure Field Assisted Sintering Technique (HP-FAST). To this aim, we first synthesized soft Mn-Zn ferrite magnetic nanoparticles (MNPs) through an easy-scalable, eco-friendly strategy based on aqueous co-precipitation in basic media, starting from transition metal chlorides. Powder X-ray diffraction (PXRD) and Transmission Electron Microscopy (TEM) analyses evidenced the formation of crystalline nanoparticles with the cubic spinel structure and average crystal size of 7.5 nm. Standard magnetometric measurements showed a saturation magnetization value of ca. 56 emu/g and no magnetic irreversibility at room temperature. The MNPs were then compacted applying an uniaxial pressure over a toroidal shaped die. In order to obtain a material with a density close to the bulk one, the as-prepared green toroids underwent either a classic sintering treatment, obtaining a microstructured system, or to High Pressure Field Assisted Sintering Technique (HP-FAST), which allowed for preserving the nanostructure. The relative permeability and core losses of the toroidal samples were evaluated in the frequency range 1-2 MHz using an in-house built setup. The comparison of the behavior of samples obtained by the two different sintering approaches showed the nanostructured samples had a much smaller relative magnetic permeability (ten times lower than the microstructured sample) and, consequently, higher core losses. However, when samples with similar mu, were compared, a significant decrease of core losses at the larger frequencies was observed. This result suggests HP-FAST is a very promising approach to prepare high density nanostructured soft magnetic materials.
机译:由于其具有高于2MHz的频率的电子设备的开发,高度压实的纳米结构软磁体的合成是非常理想的。在这项工作中,我们调查了高压场辅助烧结技术的潜力(HP-FAST)。为此目的,我们首先通过基于碱性培养基中的含水共沉淀,从过渡金属氯化物的含水共析出,通过易缩放的环保策略来合成软Mn-Zn铁氧体磁性纳米粒子(MNP)。粉末X射线衍射(PXRD)和透射电子显微镜(TEM)分析证明了具有立方尖晶石结构的结晶纳米颗粒和7.5nm的平均晶体尺寸的形成。标准磁测度测量显示了CA的饱和磁化值。 56 EMU / g在室温下无磁性不可逆性。然后将MnP压实在环形模具上施加单轴压力。为了获得密度靠近体积密度的材料,所准备的绿环形经历了经典烧结处理,获得微结构化的系统,或者高压场辅助烧结技术(HP-Fast),其允许保持纳米结构。使用内部内置设置在1-2MHz的频率范围内评价环形样品的相对渗透性和核心损失。通过两种不同的烧结方法获得的样品的行为的比较显示纳米结构样品具有更小的相对磁导率(比微结构化样品的十倍),并且因此,更高的核心损失。然而,当比较具有类似MU的样品时,观察到较大频率下的核心损耗的显着降低。该结果表明HP-Fast是制备高密度纳米结构软磁材料的非常有希望的方法。

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