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首页> 外文期刊>ACS applied materials & interfaces >Correlation between Structural Changes and Electrical Transport Properties of Spinel ZnFe2O4 Nanoparticles under High Pressure
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Correlation between Structural Changes and Electrical Transport Properties of Spinel ZnFe2O4 Nanoparticles under High Pressure

机译:高压下尖晶石ZnFe2O4纳米颗粒的结构变化与电气传输性能的相关性

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摘要

The structural phase transition of synthetic ZnFe2O4 nano particles (ZFO NPs) is investigated as a function of pressure up to 40.6 GPa at room temperature for the first time, and its associated intriguing electrical transport properties are resolved from in situ impedance spectra and magnetoresistivity measurements. Significant anomalies are observed in the properties of the grain boundary resistance (R-gb), the relaxation frequency (f(max)), and the relative permittivity (epsilon(r)) in the ZFO NPs under the pressures around 17.5-21.5 GPa. These anomalies are believed to be correlated with a cubic-to-orthorhombic phase transition of ZnFe2O4 at the pressures between 21.9 and 25.7 GPa, which is found to be partially reversible. The pressure-tuned dielectric properties are measured for the cubic and the orthorhombic phases of ZFO, respectively. Remarkably, R-gb decreases up to 6 orders of magnitude as a function of pressure in the cubic phase. The dielectric polarization is obviously strengthened with increased f(max) and decreased epsilon(r) with pressure in the orthorhombic phase. Furthermore, it is confirmed that the external pressure effectively improves the electrochemical stability of the sample based on the cycled measurements of the impedance spectra at various pressures. The changes in the complex permittivity (epsilon', epsilon '') and the dielectric loss tangent (tan delta) with frequency reveal the irreversible increase in the dielectric loss accompanied by phase transition. The MR measurements indicate that ZFO NPs are superparamagnetic under high pressure of up to 40 GPa. The transmission electron microscopy images reflect the decrease in the grain boundary number and some local amorphization of grains after compression, which provides good explanations for the changes in the electrical transport properties as a function of pressure. Herein, the structural and electrical properties of ZnFe2O4 NPs generated are preserved by quenching the high-pressure phase to ambient conditions, thus providing great choices of ferrites materials for a variety of applications.
机译:首次研究了合成ZnFe2O4纳米颗粒(ZFO NPS)的结构相转变作为高达40.6GPa的压力函数,并且其相关的有趣电气传输性能从原位阻抗谱和磁阻测量分解。在晶界阻(R-GB)的性质中,弛豫频率(F(最多))和ZFO NPS中的相对介电常数(ε(ε(ε(R))约为约17.5-21.5GPa,在ZFO NPS中的相对介电常数(ε(ε(R))中观察到显着的异常。这些异常被认为与ZnFe2O4的立方对正常的相转变在21.9和25.7GPa之间的压力下,发现部分可逆。测量压力调节的介电性能分别用于ZFO的立方和正晶相。值得注意的是,R-GB在立方相中压力的函数下降至6个数量级。在正交相中增加F(最多)和降低压力,显然强化了介电偏振。此外,证实外部压力有效地基于各种压力的阻抗光谱的循环测量来改善样品的电化学稳定性。复杂介电常数(epsilon',epsilon')和频率损耗正切(Tan delta)的变化揭示了伴随相转变的介电损耗的不可逆增加。 MR测量表明,ZFO NPS在高达40GPa的高压下的超顺磁性。透射电子显微镜图像反映了压缩后晶界数和一些颗粒的一些局部非形状的减小,这为电气传输性能的变化提供了良好的解释,作为压力的函数。这里,通过将高压相位淬火到环境条件来保留产生的ZnFe2O4 NP的结构和电性能,从而为各种应用提供了铁氧体材料的良好选择。

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