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首页> 外文期刊>Journal of Solid State Chemistry >Effects of structure and electronic properties of spinel ferrites on their emissivity in middle and short wavebands
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Effects of structure and electronic properties of spinel ferrites on their emissivity in middle and short wavebands

机译:尖晶石铁氧体结构与电子性质对中短波带发射率的影响

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In this study, the samples of a series of spinet ferrites (Fe3O4, NiFe2O4, and CuFe2O4) were prepared to investigate their emissivity performance in the middle and short wavebands. The emissivity of the samples was measured in the temperature range of 27-500 degrees C. The results show that Fe3O4 had the highest average emissivity values of 0.98 in 8-14 mu m waveband and 0.97 in 3-5 mu m waveband. In addition, CuFe2O4 had the second-highest values of 0.95 in 8-14 mu m waveband and 0.92 in 3-5 mu m waveband. Finally, NiFe2O4 had the lowest values of 0.94 in 8-14 pm waveband and 0.59 in 3-5 mu m waveband. Given that the force constant K-O has an effect on the lattice distortion, which, in turn, is an important factor influencing the emissivity performance in 8-14 mu m waveband, infrared spectrum measurements and an X-ray diffraction refinement of the spinel ferrites were performed for the calculation of K-O. The results show that Fe3O4 had a smaller K-O value (94.64 x 10(3)) than NiFe2O4 (95.37 x 10(3)) and CuFe2O4 (94.72 x 10(3)), which confirms that K-O has an inverse relationship with the emissivity in 8-14 mu m waveband for the studied series of spinel ferrites. Furthermore, the first principle calculations were used to discuss the effect of electronic transition on the emissivity in 3-5 mu m waveband. The calculation results show that, for Fe3O4, the O 2p orbitals pass through the Fermi level, resulting in the electronic transition near the Fermi level needs less energy to overcome the band gap than that for NiFe2O4 and CuFe2O4, which indicates that the electronic transition for Fe3O4 is easier. This implies that Fe3O4 would have higher emissivity in 3-5 mu m waveband than NiFe2O4 and CuFe2O4 do. The band gap values of the series of spinel ferrite samples were measured by UV-Vis diffuse reflectance spectroscopy, and the variation trend of the band gap values is opposite to that of the 3-5 mu m band emissivity. This study implies that the development of high-infrared-radiation materials with a ferrite spinel structure should aim at reducing the force constant K-O and band gap, which is a possible direction for future research.
机译:在该研究中,制备了一系列螺旋铁氧体(Fe3O4,NiFe2O4和Cufe2O4)的样品,以研究中间和短波带的发射性能。在27-500℃的温度范围内测量样品的发射率。结果表明Fe3O4在8-14亩M波段中具有0.98的最高平均发射率值0.98,在3-5μm波段中为0.97。此外,CuFe2O4在8-14μm波段中具有0.95的第二最高值,3-5μm波段中的0.92。最后,NiFe2O4在8-14 PM波段中具有0.94的最低值和3-5μm波段中的0.59。考虑到力常数KO对晶格畸变的影响,这反过来是影响8-14亩波段中的发射率能,红外光谱测量和尖晶石铁氧体的X射线衍射细化的重要因素表演了KO的计算。结果表明,Fe3O4具有比NiFe2O4(94.64×10(3))的较小的KO值(95.37×10(3))和CuFe 2 O 4(94.72×10(3)),证实KO与发射率有反比关系在8-14亩波段中,用于研究的尖晶石铁氧体系列。此外,第一个原理计算用于讨论电子转变对3-5μm波段发射率的影响。计算结果表明,对于Fe3O4,O 2P轨道通过费米水平,导致FERMI水平附近的电子转换需要更少的能量来克服频带隙,而不是NiFe2O4和CuFe2O4,这表明电子转换Fe3O4更容易。这意味着FE3O4在3-5μm波段中具有比NiFe2O4和CuFe2O4的更高的发射率。通过UV-VI扩散反射光谱法测量尖晶石铁氧体样品系列的带隙值,带隙值的变化趋势与3-5μm波段发射率相反。本研究意味着具有铁氧体尖晶石结构的高红外辐射材料的开发应旨在减少力常数K-O和带隙,这是未来研究的可能方向。

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