论文标题

li掺杂的ZnO化合物中的D0铁磁性

d0 Ferromagnetism in Li-doped ZnO Compounds

论文作者

Chouhan, L., Bouzerar, G., Srivastava, S. K.

论文摘要

最近,D0铁磁材料已被预测为用于Spintronics应用的新型新型材料之一。在这项工作中,我们研究了由固态反应途径方法制备的Zn1-Xlixo(X = 0、0.02、0.04和0.06)样品,即Zn1-Xlixo(X = 0,0.02,0.04和0.06)。从使用X射线衍射(XRD)模式对晶体结构的研究,很明显,准备好的材料是在六边形Wurtzite结构的单相中形成的。 XRD模式的完善表明,ZnO中的Li-Oberation晶格参数发生了很小的变化。发现从XRD图案估计的平均结晶石大小(SC)在35-50 nm的范围内。扫描电子显微镜的显微结构研究揭示了50-70 nm的晶粒的均匀形态。能量分散频谱表明,没有不必要的铁磁杂质渗入最终准备的样品。用鱿鱼磁力计测量磁化(M)的温度(T)变化表明,未蛋白的ZnO表现出Diamagnetic特性,但所有Li掺杂的化合物都表现出室温的铁磁性,并且具有零磁性的磁性不可逆性行为。从300 K和300 K处的磁化与现场测量值相比,可以观察到Li掺杂的样品表现出具有超舒适性(〜50 OE)的铁磁环(〜50 OE),并且最大饱和磁化值为0.10 EMU/gm的X = 0.02样品,X = 0.02样品,随着LI浓度的增加而降低。

Recently, d0 ferromagnetic materials have been projected as one of the promising novel materials for spintronics applications. In this work, we have studied Li-doped ZnO compounds, i.e. Zn1-xLixO (x=0, 0.02, 0.04, and 0.06) samples, prepared by the solid-state reaction route method. From the study of crystal structure using X-ray diffraction (XRD) patterns, it is evident that the prepared materials have been formed in a single-phase of the hexagonal wurtzite structure. The refinement of the XRD patterns suggests that there are very small changes in the lattice parameters upon Li-incorporation in ZnO. The average crystallite size (SC), estimated from XRD patterns was found to be in the range of 35-50 nm. The microstructural study by scanning electron microscope reveals the uniform morphology of the grains of the order of 50-70 nm. The energy dispersive spectrum indicates that no unwanted ferromagnetic impurities have crept into the final prepared samples. The measurement of the temperature (T) variation of magnetization (M) with SQUID magnetometer indicates that undoped ZnO exhibits diamagnetic property but all Li-doped compounds exhibit room-temperature ferromagnetism and with a magnetic irreversibility behavior between zero-field cooled and field cooled M-T data. From the magnetization versus field measurements at 3 and 300 K, it is observed that Li-doped samples exhibit ferromagnetic loops with ultra-soft coercivity (~50 Oe) and with a maximum saturation magnetization of 0.10 emu/gm for x= 0.02 sample, which decreases with the increase in Li concentration.

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