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Substantiation of Epitaxial Growth of Diamond Crystals on the Surface of Carbide Fe3AlC0.66 Phase Nanoparticles

机译:碳化物Fe3AlC0.66相纳米颗粒表面金刚石晶体外延生长的证实

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摘要

Samples of Fe–Al–C alloys of varying composition were synthesized under high pressures and temperatures. From X-ray analysis data, only K-phase with usual for it average parameter of elemental lattice cell, a = 0.376 nm, carbide Fe3C and cubic diamond reflexes were present before and after cooling to the temperature of liquid nitrogen.Calculations were made of the parameters of unit cells, the enthalpy of formation of the Fe3AlC, Fe3.125Al0.825C0.5, Fe3.5Al0.5C0.5, Fe3.5Al0.5C, Fe3Al0.66C0.66, and Fe3AlC0.66 unit cells and crystallographic planes were identified on which epitaxial growth of the diamond phase was possible, using density functional theory as implemented in the WIEN2k package.The possibility of epitaxial growth of diamond crystals on Fe3AlC0.66 (K-phase) nanoparticles was, therefore, demonstrated. The [200] plane was established to be the most suitable plane for diamond growth, having four carbon atoms arranged in a square and a central vacancy which can be occupied by carbon during thermal-and-pressure treatment. Distances between carbon atoms in the [200] plane differ by only 5% from distances between the carbon atoms of a diamond. The electronic structure and energetic parameters of the substrate were also investigated. It was shown that the substrate with at least four intermediate layers of K-phase exhibits signs of stability such as negative enthalpy of formation and the Fermi level falling to minimum densities of states.
机译:在高压和高温下合成了不同成分的Fe–Al–C合金样品。从X射线分析数据来看,在冷却至液氮温度之前和之后,仅存在K相,其元素格晶胞的平均参数通常为a = 0.376nm,碳化物Fe3C和立方金刚石反射。晶胞参数,Fe3AlC,Fe3.125Al0.825C0.5,Fe3.5Al0.5C0.5,Fe3.5Al0.5C,Fe3Al0.66C0.66和Fe3AlC0.66晶胞的形成焓和晶体学使用WIEN2k软件包中实现的密度泛函理论,确定了可能发生金刚石相外延生长的平面.Fe3AlC 0.66 (K相)纳米粒子上金刚石晶体的外延生长可能性为因此,证明了。 [200]平面被确定为最适合钻石生长的平面,具有四个以正方形排列的碳原子和一个中心空位,该空位在热处理和加压处理期间会被碳占据。 [200]平面中碳原子之间的距离与钻石碳原子之间的距离仅相差5%。还研究了基底的电子结构和能量参数。已显示具有至少四个K相中间层的基材表现出稳定性的迹象,例如负的形成焓和费米能级降至最低状态密度。

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