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SOME CHALLENGES IN THE NITRIDE METALLURGY: SYNTHESIS OF COMPLEX NITRIDES, PHASE EQUILIBRIA AND CHEMICAL POTENTIAL MEASUREMENTS

机译:氮化物冶金方面的一些挑战:复杂氮化物的合成,相平衡和化学势测量

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As part of a systematic study on the thermodynamic properties of complex nitrides, phase equilibria of the system Li-M-N (M = Mg, Al, Ga) at 900 K were investigated. An attempt to determine the thermodynamic properties of complex nitrides was made by using the galvanic cell method, which utilizes LiMgN as an electrolyte under nitrogen atmosphere. The electromotive force (Emf) of the cell at temperatures between 800 and 1100 K was measured. While the Emf of the cell at 900 K was measured to be 0.137 V, data discrepancies of +-0.03 V were found. It was difficult to determine temperature dependence of the Emf. The Gibbs energy change for the reaction, 1/3 Li_3N (s) + 1/3 Mg_3N_2 (s) = LiMgN (s), at 900 K was determined to be ΔG°_r (LiMgN) = -13.2 (+-2.9) kJ/mol. Using thermodynamic information on the binary nitride from literature, the standard Gibbs energy of LiMgN was derived to be ΔG°_f(LiMgN)= -121 kJ at 900 K. The thermodynamic stability range of nitride was discussed by constructing isothermal chemical potential diagrams that provide a better understanding of the stability region of the LiMgN phase. The diagram was found to be in good agreement with the isothermal phase diagram determined by the alloy equilibration method. Although the obtained data includes large uncertainties, the results provide a better understanding of the thermodynamic stability of nitrides. The potential application of this complex nitride to nitrogen chemical sensors or a medium for controlling nitrogen potential is also shown.
机译:作为对复杂氮化物热力学性质进行系统研究的一部分,研究了900 K下Li-M-N系统的相平衡(M = Mg,Al,Ga)。试图通过使用原电池法确定复合氮化物的热力学性质,该方法在氮气气氛下利用LiMgN作为电解质。测量了在800和1100K之间的温度下电池的电动势(Emf)。虽然在900 K下测得的电池Emf为0.137 V,但发现数据差异为+ -0.03V。很难确定电动势的温度依赖性。在900 K时,该反应的吉布斯能量变化1/3 Li_3N(s)+ 1/3 Mg_3N_2(s)= LiMgN(s)被确定为ΔG°_r(LiMgN)= -13.2(+ -2.9) kJ /摩尔利用文献中有关二元氮化物的热力学信息,得出LiMgN的标准吉布斯能量在900 K下为ΔG°_f(LiMgN)= -121 kJ。通过构建等温化学势图,讨论了氮化物的热力学稳定性范围。更好地了解LiMgN相的稳定区域。发现该图与通过合金平衡方法确定的等温相图非常吻合。尽管获得的数据存在很大的不确定性,但结果提供了对氮化物热力学稳定性的更好理解。还显示了这种复合氮化物在氮化学传感器或用于控制氮势的介质中的潜在应用。

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