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首页> 外文期刊>Modern Physics Letters, B. Condensed Matter Physics, Statistical Physics, Applied Physics >Effect of nano-sized cerium zirconium oxide solid solution on far-infrared emission properties of tourmaline powders
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Effect of nano-sized cerium zirconium oxide solid solution on far-infrared emission properties of tourmaline powders

机译:纳米铈锆锆固溶体对电气石粉远红外发射特性的影响

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摘要

Far-infrared functional nanocomposites were prepared by the co-precipitation method using natural tourmaline (XY(3)Z(6)Si(6)O(18)(BO3)(3)V3W, where X is Na+, Ca2+, K+, or vacancy; Y is Mg2+, Fe2+, Mn2+, Al3+, Fe3+, Mn3+, Cr3+, Li+, or Ti4+; Z is Al3+, Mg2+, Cr3+, or V3+; V is O2-, OH-; and W is O2-, OH-, or F-) powders, ammonium cerium(IV) nitrate and zirconium(IV) nitrate pentahydrate as raw materials. The reference sample, tourmaline modified with ammonium cerium(IV) nitrate alone was also prepared by a similar precipitation route. The results of Fourier transform infrared spectroscopy show that tourmaline modified with Ce and Zr has a better far-infrared emission property than tourmaline modified with Ce alone. Through characterization by transmission electron microscopy (TEM), X-ray diffraction (XRD), and X-ray photoelectron spectroscopy (XPS), the mechanism for oxygen evolution during the heat process in the two composite materials was systematically studied. The XPS spectra show that Fe3+ ratio inside tourmaline modified with Ce alone can be raised by doping Zr. Moreover, it is showed that there is a higher Ce3+ ratio inside the tourmaline modified with Ce and Zr than tourmaline modified with Ce alone. In addition, XRD results indicate the formation of CeO2 and Ce1-xZrxO2 crystallites during the heat treatment and further TEM observations show they exist as nanoparticles on the surface of tourmaline powders. Based on these results, we attribute the improved far-infrared emission properties of Ce-Zr doped tourmaline to the enhanced unit cell shrinkage of the tourmaline arisen from much more oxidation of Fe2+ to Fe3+ inside the tourmaline caused by the change in the catalyst redox properties of CeO2 brought about by doping with Zr4+. In all samples, tourmaline modified with 7.14 wt.% Ce and 1.86 wt.% Zr calcined at 800 degrees C for 5 h has the best far-infrared emission property with the maximum emissivity value of 98%.
机译:通过共沉淀法,使用天然电气石(XY(3)Z(6)Si(6)O(18)(BO3)(3)V3W,其中X为Na +,Ca2 +,K +,或空位; Y为Mg2 +,Fe2 +,Mn2 +,Al3 +,Fe3 +,Mn3 +,Cr3 +,Li +或Ti4 +; Z为Al3 +,Mg2 +,Cr3 +或V3 +; V为O2-,OH-; W为O2-,OH -或F-)粉末,​​五水合硝酸铈铈(IV)和五水硝酸锆(IV)为原料。参照样品,仅用硝酸铈铈(IV)铵修饰的电气石也通过类似的沉淀路线制备。傅里叶变换红外光谱的结果表明,用Ce和Zr改性的电气石比仅用Ce改性的电气石具有更好的远红外发射性能。通过透射电子显微镜(TEM),X射线衍射(XRD)和X射线光电子能谱(XPS)表征,系统地研究了两种复合材料在加热过程中氧气逸出的机理。 XPS光谱表明,掺杂Zr可以提高单独用Ce修饰的电气石内部的Fe3 +比例。此外,表明用Ce和Zr修饰的电气石比单独用Ce修饰的电气石具有更高的Ce3 +比。此外,X射线衍射结果表明,在热处理过程中会形成CeO2和Ce1-xZrxO2微晶,进一步的TEM观察表明,它们以电气石的形式存在于电气石粉末表面。基于这些结果,我们将掺杂Ce-Zr的电气石改善的远红外发射特性归因于电气石内部由于催化剂氧​​化还原特性的变化而引起的Fe2 +到Fe3 +的更多氧化,从而导致电气石的单元格收缩增强。掺杂Zr4 +引起CeO2的迁移。在所有样品中,用7.14 wt。%Ce和1.86 wt。%Zr改性的电气石在800摄氏度下煅烧5 h具有最佳的远红外发射特性,最大发射率值为98%。

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