Ali S S, Li W J, Javed K, Shi D W, Riaz S, Zhai G J, Han X F
Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, People's Republic of China.
Nanotechnology. 2016 Jan 29;27(4):045708. doi: 10.1088/0957-4484/27/4/045708. Epub 2015 Dec 14.
One-dimensional core-shell nanostructures consisting of a ferromagnetic cobalt core and a multiferroic BiFeO3 (BFO) shell were fabricated by an artificial two-step methodology. The coupling between the ferromagnetic core and multiferroic shell manifests a significant exchange bias effect which gives a clear demonstration of the anti-ferromagnetic functionality of the BFO shell material. Exchange biases of 30 Oe and 60 Oe are observed at 300 K and at 5 K, respectively. Superparamagnetic contributions at lower temperatures play an important role in contributing to overall magnetic behavior. Dominant shape anisotropy causes parallel alignment of the easy magnetization axis along the axis of core-shell nanowires. A coherent mode of the magnetization reversal mechanism is observed by the angular dependence of coercivity (H c). This versatile two-step methodology can be employed to fabricate and investigate many other hybrid nanostructures leading to a vast scope of investigation for researchers.
采用人工两步法制备了由铁磁钴核和多铁性BiFeO3(BFO)壳组成的一维核壳纳米结构。铁磁核与多铁性壳之间的耦合表现出显著的交换偏置效应,这清楚地证明了BFO壳材料的反铁磁功能。在300 K和5 K时分别观察到30 Oe和60 Oe的交换偏置。较低温度下的超顺磁贡献对整体磁行为起着重要作用。主导的形状各向异性导致易磁化轴沿核壳纳米线的轴平行排列。通过矫顽力(Hc)的角度依赖性观察到磁化反转机制的相干模式。这种通用的两步法可用于制备和研究许多其他混合纳米结构,为研究人员提供了广阔的研究范围。