Gandhi Ashish Chhaganlal, Li Tai-Yue, Kumar B Vijaya, Reddy P Muralidhar, Peng Jen-Chih, Wu Chun-Ming, Wu Sheng Yun
Department of Physics, National Dong Hwa University, Hualien 97401, Taiwan.
Department of Chemistry, Nizam College, Osmania University, Hyderabad 500001, India.
Nanomaterials (Basel). 2020 Jul 4;10(7):1318. doi: 10.3390/nano10071318.
The Fe-doped NiO nanoparticles that were synthesized using a co-precipitation method are characterized by enhanced room-temperature ferromagnetic property evident from magnetic measurements. Neutron powder diffraction experiments suggested an increment of the magnetic moment of 3 ions in the nanoparticles as a function of Fe-concentration. The temperature, time, and field-dependent magnetization measurements show that the effect of Fe-doping in NiO has enhanced the intraparticle interactions due to formed defect clusters. The intraparticle interactions are proposed to bring additional magnetic anisotropy energy barriers that affect the overall magnetic moment relaxation process and emerging as room temperature magnetic memory. The outcome of this study is attractive for the future development of the room temperature ferromagnetic oxide system to facilitate the integration of spintronic devices and understanding of their fundamental physics.
采用共沉淀法合成的铁掺杂氧化镍纳米颗粒具有增强的室温铁磁性能,这从磁性测量中可以明显看出。中子粉末衍射实验表明,纳米颗粒中3价离子的磁矩随铁浓度的增加而增加。温度、时间和场依赖的磁化强度测量表明,由于形成了缺陷团簇,铁掺杂到氧化镍中增强了颗粒内相互作用。颗粒内相互作用被认为会带来额外的磁各向异性能垒,影响整体磁矩弛豫过程,并表现为室温磁记忆。这项研究的结果对于室温铁磁氧化物系统的未来发展具有吸引力,有助于自旋电子器件的集成及其基本物理原理的理解。