Experimental investigation and thermodynamic assessment of phase equilibria in the GaTe–AgGa5Te8–Te system below 600 K

IF 0.9 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY
M. Moroz, P. Demchenko, F. Tesfaye, M. Prokhorenko, S. Prokhorenko, O. Reshetnyak
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Abstract

Equilibrium T–x space of the Ag–Ga–Te system in the GaTe–AgGa5Te8–Te part was divided below 600 K into three-phase regions Ga2Te5–AgGa5Te8–Te, Ga2Te3–AgGa5Te8–Ga2Te5, Ga7Te10–AgGa5Te8–Ga2Te3, Ga3Te4–AgGa5Te8–Ga7Te10, and GaTe–AgGa5Te8–Ga3Te4 by the electromotive force (EMF) method. To accomplish accurate experimental data, the following electrochemical cells (ECs) were assembled: (−)IE|NE|SSЕ|R{Ag+}|PЕ|IE(+), where IE is the inert electrode (graphite powder), NE is the negative electrode (silver powder), SSE is the solid-state electrolyte (glassy Ag3GeS3Br), PE is the positive electrode, R{Ag+} is the region of PE that contact with SSE. At the stage of cell preparation, PE is a nonequilibrium phase mixture of the well-mixed powdered compounds Ag2Te, GaTe, Ga2Te3, and tellurium, taken in ratios corresponding to two or three different points in each of the mentioned regions. The equilibrium set of phases was formed in the R{Ag+} region at 600 K for 48 h with the participation of the Ag+ ions. Silver cations, displaced for thermodynamic reasons from the NE to the PE of the ECs, acted as catalyst, i.e., small nucleation centers of equilibrium phases. The spatial position of the established three-phase regions relative to the silver point was used to assign the overall potential-determining reactions of synthesis of the ternary AgGa5Te8 and binary Ga2Te5, Ga7Te10, Ga3Te4 compounds. For the first time, the values of the standard thermodynamic functions (Gibbs energies, enthalpies, and entropies) of these compounds were determined based on the temperature dependences of the EMF of the ECs.
600 K 以下 GaTe-AgGa5Te8-Te 体系相平衡的实验研究和热力学评估
用电动势(EMF)方法将GaTe-AgGa5Te8-Te部分的Ag-Ga-Te体系的平衡T-x空间在600 K以下划分为Ga2Te5-AgGa5Te8-Te、Ga2Te3-AgGa5Te8-Ga2Te5、Ga7Te10-AgGa5Te8-Ga2Te3、Ga3Te4-AgGa5Te8-Ga7Te10和GaTe-AgGa5Te8-Ga3Te4三相区域。为了获得准确的实验数据,我们组装了以下电化学电池(EC):(-)IE|NE|SSEЕ|R{Ag+}|PЕ|IE(+),其中 IE 为惰性电极(石墨粉),NE 为负电极(银粉),SSE 为固态电解质(玻璃状 Ag3GeS3Br),PE 为正电极,R{Ag+} 为 PE 与 SSE 接触的区域。在电池制备阶段,PE 是由混合均匀的 Ag2Te、GaTe、Ga2Te3 和碲化合物粉末组成的非平衡相混合物,其比例与上述每个区域的两个或三个不同点相对应。在 R{Ag+} 区域,Ag+ 离子在 600 K 的温度下参与 48 小时,形成了一组平衡相。由于热力学原因,银阳离子从电解质的东北部转移到了东南部,起到了催化剂的作用,即平衡相的小型成核中心。利用已建立的三相区域相对于银点的空间位置来分配合成三元 AgGa5Te8 和二元 Ga2Te5、Ga7Te10、Ga3Te4 化合物的总电位决定反应。首次根据导电率电磁场的温度相关性确定了这些化合物的标准热力学函数值(吉布斯能、焓和熵)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
1.70
自引率
14.30%
发文量
83
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