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首页> 外文期刊>Nanoscale Research Letters >Composition, Microstructure, and Electrical Properties Control of the Powders Synthesized by Sol–Gel Auto-Combustion Method Using Citric Acid as the Fuel
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Composition, Microstructure, and Electrical Properties Control of the Powders Synthesized by Sol–Gel Auto-Combustion Method Using Citric Acid as the Fuel

机译:柠檬酸为燃料的溶胶-凝胶自动燃烧法合成粉末的组成,微观结构和电性能控制

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Nanocrystalline lithium ferrite Li ~(0.5) Fe ~(1.7) Mg ~(0.8) O ~(4) powders were synthesized by the sol–gel auto-combustion method from the corresponding metal nitrates using citric acid as fuel. The results from XRD, SEM, and AC electrical conductivity studies are summarized as follows: The results of XRD analysis showed that all the samples were formed in single-phase cubic spinel structure at different annealing temperatures from 300 to 700?°C for 2?h. The lattice parameter was found to decrease on increasing the temperature. The microstructure of lithium ferrite powders was temperature dependent. The particle size was increased with the annealing temperature. AC electrical properties were investigated using the super-linear power law and activation energies were calculated for all compositions. The electron mobility in Li ~(0.5) Fe ~(1.7) Mg ~(0.8) O ~(4) samples ranged from 0.05 to 0.29?eV, which clearly indicated that the present lithium ferrites have semiconductor-like behavior. The frequency exponent “s” of lithium ferrite lies in the range 0.5?? s ??1, which confirms the electron hopping between Fe _(2?+) and Fe _(3?+) ions.
机译:以柠檬酸为燃料,通过溶胶-凝胶自动燃烧法,从相应的金属硝酸盐中合成了纳米晶的铁氧体锂〜(0.5)Fe〜(1.7)Mg〜(0.8)O〜(4)粉末。 XRD,SEM和AC电导率研究的结果总结如下:XRD分析的结果表明,所有样品均在300-700°C的不同退火温度下2℃形成单相立方尖晶石结构。 H。发现晶格参数随温度升高而降低。铁氧体锂粉末的微观结构与温度有关。粒度随着退火温度而增加。使用超线性功率定律研究了交流电性能,并计算了所有成分的活化能。 Li〜(0.5)Fe〜(1.7)Mg〜(0.8)O〜(4)样品中的电子迁移率在0.05至0.29?eV范围内,这清楚地表明本发明的锂铁氧体具有类似半导体的行为。锂铁氧体的频率指数“ s”在0.5≤<π的范围内。 s << 1,这证实了Fe _(2α+)和Fe _(3α+)离子之间的电子跳跃。

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