论文标题
Zn1-XCOXO纳米颗粒的磁化:单离子各向异性和自旋聚类
Magnetization of Zn1-xCoxO nanoparticles: single-ion anisotropy and spin clustering
论文作者
论文摘要
Zn1-XCOXO(0.0055 <x <0.073)纳米颗粒的磁化是作为温度t(1.7 k <t,10 K)的函数测量的,对于使用鱿鱼磁力计的磁场,磁场最高为65 koe。样品通过三种不同的生长方法合成:微波辅助水热,燃烧反应和溶胶 - 凝胶。对于所有研究的样品,由于二氧化碳+最近的邻居而导致的抗铁磁性(AF)自旋聚类。在T> = 6 K时,CO2+离子的磁化具有Brillouin型行为,但低于6 K,它显示出明显的偏差。我们已经表明,观察到的偏差可以源自具有单轴对称性的单离子各向异性(SIA)。拟合的结果表明,轴向-SIA参数D(通常为d = 4.4 K)略大于散装值d = 3.97 k。未观察到D的显着变化,这是CO浓度或生长过程的函数。对于每个样品,SIA拟合还给出了对应于磁化技术饱和值的有效浓度(X)。 X的浓度依赖性与基于聚类模型的预测的比较显示,与生长方法无关的AF旋转聚类的增强。这归因于纳米颗粒中钴离子的夹紧非随机分布。局部浓度(XL)的方法已用于量化观察到的随机性偏差。假设ZnO Core/ Zn1-Xcoxo壳纳米颗粒,已从比率XL/ X确定了壳的厚度。
The magnetization of Zn1-xCoxO (0.0055 < x < 0.073) nanoparticles has been measured as a function of temperature T (1.7 K < T , 10 K) and for magnetic field up to 65 kOe using a SQUID magnetometer. Samples were synthesized by three different growth methods: microwave-assisted hydrothermal, combustion reaction and sol-gel. For all studied samples, the magnetic properties derive from the antiferromagnetic (AF) spin clustering due to the Co2+ nearest neighbors. At T >= 6 K, the magnetization of the Co2+ ions has a Brillouin-type behavior, but below 6 K, it shows a notable deviation. We have shown that the observed deviation may be derived from single-ion anisotropy (SIA) with uniaxial symmetry. Results of fits show that the axial-SIA parameter D (typically D = 4.4 K) is slightly larger that the bulk value D = 3.97 K. No significant change of D has been observed as a function of the Co concentration or the growth process. For each sample, the SIA fit gave also the effective concentration (x) corresponding to the technical saturation value of the magnetization. Comparison of the concentration dependence of x with predictions based on cluster models shows an enhancement of the AF spin clustering independent of the growth method. This is ascribed to a clamped non-random distribution of the cobalt ions in the nanoparticles. The approach of the local concentration (xL) has been used to quantify the observed deviation from randomicity. Assuming a ZnO core/ Zn1-xCoxO shell nanoparticle, the thickness of the shell has been determined from the ratio xL/x.