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核壳结构尖晶石@铁氧体纳米粒子的 3d 金属掺杂有望成为室温交换偏置磁体的途径。

3d Metal Doping of Core@Shell Wüstite@ferrite Nanoparticles as a Promising Route toward Room Temperature Exchange Bias Magnets.

机构信息

Departament of Biotechnology, Chemistry and Pharmacy, University of Siena 1240, Siena, I-53100, Italy.

ICCOM - CNR, Sesto Fiorentino FI, I-50019, Italy.

出版信息

Small. 2022 Apr;18(16):e2107426. doi: 10.1002/smll.202107426. Epub 2022 Mar 10.

DOI:10.1002/smll.202107426
PMID:35274450
Abstract

Nanometric core@shell wüstite@ferrite (Fe O@Fe O ) has been extensively studied because of the emergence of exchange bias phenomena. Since their actual implementation in modern technologies is hampered by the low temperature at which bias is operating, the critical issue to be solved is to obtain exchange-coupled antiferromagnetic@ferrimagnetic nanoparticles (NPs) with ordering temperature close to 300 K by replacing the divalent iron with other transition-metal ions. Here, the effect of the combined substitution of Fe  with Co  and Ni  on the crystal structure and magnetic properties is studied. To this aim, a series of 20 nm NPs with a wüstite-based core and a ferrite shell, with tailored composition, (Co Fe O@Co Fe O  and Ni Co Fe O@Ni Co Fe O ) is synthetized through a thermal-decomposition method. An extensive morphological and crystallographic characterization of the obtained NPs shows how a higher stability against the oxidation process in ambient condition is attained when divalent cation doping of the iron oxide lattice with Co  and Ni  ions is performed. The dual-doping is revealed to be an efficient way for tuning the magnetic properties of the final system, obtaining Ni-Co doped iron oxide core@shell NPs with high coercivity (and therefore, high energy product), and increased antiferromagnetic ordering transition temperature, close to room temperature.

摘要

纳米核壳结构的赤铁矿/铁酸盐(FeO@Fe2O3)由于交换偏置现象的出现而得到了广泛的研究。由于实际应用于现代技术时受到工作温度的限制,因此必须解决的关键问题是通过用其他过渡金属离子取代二价铁来获得具有接近 300K 有序温度的交换耦合反铁磁/铁磁纳米颗粒(NPs)。在这里,通过共取代 Fe 用 Co 和 Ni 来研究其对晶体结构和磁性能的影响。为此,通过热分解法合成了一系列具有基于赤铁矿核和铁酸盐壳的 20nm NPs,其具有特定的组成(CoFe2O4@CoFe2O4 和 NiCoFe2O4@NiCoFe2O4)。对所获得的 NPs 进行了广泛的形态和结晶学表征,结果表明,当用 Co 和 Ni 离子对氧化铁晶格进行二价阳离子掺杂时,在环境条件下氧化过程的稳定性更高。双掺杂被证明是调整最终系统磁性能的有效方法,可以获得具有高矫顽力(因此具有高能量积)和增加的反铁磁有序转变温度的 Ni-Co 掺杂氧化铁核壳 NPs,接近室温。

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