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Thermodynamics and crystal chemistry of the hematite-corundum solid solution and the FeAlO 3 phase

机译:赤铁矿 - 刚玉的热力学和晶体化学固体溶液和FEALO 3相

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摘要

High-temperature oxide-melt calorimetry and Rietveld refinement of powder X-ray diffraction patterns were used to investigate the energetics and structure of the hematite–corundum solid solution and ternary phase FeAlO 3 (with FeGaO 3 structure). The mixing enthalpies in the solid solution can be described by a polynomial ΔH mix = WX hem (1− X hem ) with W =116 ± 10 kJ mol −1 . The excess mixing enthalpies are too positive to reproduce the experimental phase diagram, and excess entropies in the solid solution should be considered. The hematite–corundum solvus can be approximately reproduced by a symmetric, regular-like solution model with Δ G excess =( W H − TW S ) X hem X cor , where W H = 116 ± 10 kJ mol −1 and W S =32 ± 4 J mol −1 K −1 . In this model, short-range order (SRO) of Fe/Al is neglected because SRO probably becomes important only at intermediate compositions close to Fe:Al=1:1 but these compositions cannot be synthesized. The volume of mixing is positive for Al-hematite but almost ideal for Fe-corundum. Moreover, the degree of deviation from Vegard's law for Al-hematite depends on the history of the samples. Introduction of Al into the hematite structure causes varying distortion of the hexagonal network of oxygen ions while the position of the metal ions remains intact. Distortion of the hexagonal network of oxygen ions attains a minimum at the composition (Fe 0.95 Al 0.05 ) 2 O 3 . The enthalpy of formation of FeAlO 3 from oxides at 298 K is 27.9 ± 1.8 kJ mol −1 . Its estimated standard entropy (including configurational entropy due to disorder of Fe/Al) is 98.9 J mol −1 K −1 , giving the standard free energy of formation at 298 K from oxides and elements as +19.1 ± 1.8 and −1144.2 ± 2.0 kJ mol −1 , respectively. The heat capacity of FeAlO 3 is approximated as C p ( T in K)= 175.8 − 0.002472 T − (1.958 × 10 6 )/ T 2 − 917.3/ T 0.5 +(7.546 × 10 −6 ) T 2 between 298 and 1550 K, based on differential scanning calorimetric measurements. No ferrous iron was detected in FeAlO 3 by Mössbauer spectroscopy. The ternary phase is entropy stabilized and is predicted to be stable above about 1730 ± 70 K, in good agreement with the experiment. Static lattice calculations show that the LiNbO 3 -, FeGaO 3 -, FeTiO 3 -, and disordered corundum-like FeAlO 3 structures are less stable (in the order in which they are listed) than a mechanical mixture of corundum and hematite. At high temperatures, the FeGaO 3 -like structure is favored by its entropy, and its stability field appears on the phase diagram.
机译:粉末X射线衍射图的高温氧化物 - 熔化量热量和RIETVELD细化用于研究赤铁矿 - 刚玉固溶体和三元相位的能量和结构3(用Fegao 3结构)。固体溶液中的混合焓可以通过多项式ΔH混合物= Wx下(1-x下摆)来描述w = 116±10kJ摩尔-1。过量的混合焓太阳性以再现实验相图,应考虑固体溶液中的过量熵。赤铁矿 - 刚玉溶解可以大致由对称的常规溶液模型大致再现,具有Δg过量=(wh-tw s)x下摆x cor,其中wh = 116±10kj mol -1和ws = 32±4 J mol -1 k -1。在该模型中,忽略了Fe / Al的短距离顺序(SRO),因为只有在接近Fe的中间组合物的中间组合物中可能变得重要:Al = 1:1,但不能合成这些组合物。混合体积对于Al-赤铁矿而是阳性的,但对于Fe-corundum而言几乎是理想的。此外,从vegard的Al-嗜血酸盐定律的偏差程度取决于样品的历史。 Al进入赤铁矿结构的引入导致氧离子的六边形网络的变形变化,而金属离子的位置保持完整。氧离子的六边形网络的变形达到组合物(Fe 0.95 Al 0.05)2 O 3的最小值。在298k的氧化物中形成FeAlo 3的焓为27.9±1.8 kJ摩尔-1。其估计的标准熵(包括由于Fe / Al无序)的标准熵(包括紊乱)是98.9JMol -1 K -1,从氧化物和元素的298 k处形成标准的自由能量,为+19.1±1.8和-1144.2±2.0 kj mol -1分别。 FEALO 3的热量近似为C p(k)= 175.8- 0.002472 T - (1.958×10 6)/ T 2 - 917.3 / T 0.5 +(7.546×10 -6)T 2之间的298和1550 K,基于差分扫描量热测量。 ByMössbauer光谱法在FEALO 3中检测到无亚铁。三元相位是熵稳定的,预计与实验良好的一致性高于约1730±70 k以上。静态格子计算表明,LINBO 3 - ,Fegao 3 - ,FetiO 3 - 和无序的核状FEALO 3结构比刚玉和赤铁矿的机械混合物更稳定(按照它们所列的顺序)。在高温下,Fegao 3-Like结构由其熵优以,其稳定性场出现在相图上。

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