首页> 外文会议>Conference on photonics applications in astronomy, communications, industry, and high-energy physics experiments >Hoping conductance in nanocomposites (FeCoZr)_x(SiO_2)_((100-x)) produced in mixed Ar and O_2 atmosphere
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Hoping conductance in nanocomposites (FeCoZr)_x(SiO_2)_((100-x)) produced in mixed Ar and O_2 atmosphere

机译:在Ar和O_2混合气氛中产生的纳米复合材料(FeCoZr)_x(SiO_2)_((100-x))的跳跃电导

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The work presents the results of determination of chemical composition of nanocomposites (FeCoZr)_x(SiO_2)_((100-x)) produced by ion-beam sputtering in mixed argon-oxygen atmosphere. Atomic percentage of elements of metallic and dielectric phases was obtained for series of composite samples with different metallic phase content x by using of scanning electron microscopy (SEM) with attachment for X-ray microanalysis. Analysis of SEM results showed that ratio of elements forming composition on dielectric phase Y is less then be expected. Electrical properties of nanocomposite (FeCoZr)_x(SiO_2)_((100-x)) were investigated based on measurement of frequency-temperature dependencies of conductivity σ(f, T) and frequency factor α(f. T). The conductivity is almost constant throughout the entire frequency range but increases with increasing temperature for samples with lower metallic phase content x≤55.05 at.%. For samples with x≥ 61,58 at.% the conductivity have constant values in low-frequency area, then there is an increase in conductivity with further stabilization at higher frequencies. The increase of conductivity on σ(f) corresponds to reaching the maximum values of frequency factor α on the frequency dependencies α(f). The increase in σ along with the increase in frequency indicates an hopping mechanism of conduction of charges in the nanocomposite.
机译:这项工作提出了在氩气-氧气混合气氛中通过离子束溅射制备的纳米复合材料(FeCoZr)_x(SiO_2)_((100-x))的化学成分的测定结果。通过使用带有X射线显微分析附件的扫描电子显微镜(SEM),获得了具有不同金属相含量x的一系列复合样品的金属相和介电相元素的原子百分比。 SEM结果分析表明,在介电相Y上形成成分的元素的比例小于预期。通过测量电导率σ(f,T)和频率因子α(f。T)的频率-温度依赖性,研究了纳米复合材料(FeCoZr)_x(SiO_2)_((100-x))的电性能。在较低的金属相含量x≤55.05at。%的样品中,电导率在整个频率范围内几乎恒定,但随着温度的升高而增加。对于x≥61.58 at。%的样品,电导率在低频区域具有恒定值,然后电导率增加,并且在更高的频率下进一步稳定。电导率在σ(f)上的增加对应于在频率相关性α(f)上达到频率因子α的最大值。 σ的增加以及频率的增加表明纳米复合材料中电荷传导的跳跃机制。

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