掺锗银晶Ag6PS5I陶瓷材料的显微硬度

Michael Filep, A. Pogodin, I. Shender, T. Malakhovska, V. Bilanych, O. Kokhan
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引用次数: 0

摘要

本文介绍了Ag6PS5I微晶粉末、Ag6+xP1-xGexS5I (x = 0.25, 0.5, 0.75)固溶体及其陶瓷材料的制备。测定了陶瓷样品的显微硬度,并确定了P5+↔Ge4+的异价取代对所研究样品力学性能的影响。初始Ag6PS5I的合成和掺杂Ag7GeS5I的必要条件是由高纯元素组分(Ag, P, Ge, S)和先前合成的二元AgI进行的。以化学计量量的Ag6PS5I和Ag7GeS5I为原料,采用直接单温法合成了Ag6+xP1-xGexS5I (x = 0.25, 0.5, 0.75)组合物的固溶体。得到了Ag6+xP1-xGexS5I固体块状多晶合金。通过机械研磨(玛瑙砂浆)法制备了Ag6+xP1-xGexS5I微晶粉体。通过孔径为20 μm和10 μm的筛子对粉末进行筛分,得到粒径为10 ~ 20 μm的微晶。用XRD分析了所得粉体的物相组成。研究发现,所研究样品的粉末模式是由一个反射系统的存在所表征的,该反射系统与sgf -43m的面心立方细胞相对应。制备的微粉以圆盘状受压(P ~ 400 MPa),在真空石英安瓿中650°С退火。用维氏法测定了所得陶瓷的显微硬度。所有陶瓷的显微硬度H都随着载荷p的增加而降低。这表明,在Ag6+xP1-xGexS5I固溶体的基础上制备的陶瓷存在直接的尺寸效应。在P > 1 ~ 1.5 N的载荷下,得到的显微硬度值与载荷无关,表明达到了本征硬度。利用Meyer定律进一步分析了Ag6+xP1-xGexS5I固溶体的显微硬度和尺寸效应。得到的Ag6+xP1-xGexS5I基陶瓷的Meyer's指数在n = 1.78 ÷ 1.81范围内,说明在这些样品中存在直接的尺寸效应,表明所研究的陶瓷属于软材料。显微硬度的浓度依赖性表明,Ag6+xP1-xGexS5I固溶体陶瓷材料中锗含量的增加会导致材料显微硬度的降低。
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MICROHARDNESS OF CERAMIC MATERIALS BASED ON Ge-DOPED ARGYRODITE Ag6PS5I
This paper presents the preparation of mic­rocrystalline powders of Ag6PS5I, solid solutions of Ag6+xP1-xGexS5I (x = 0.25, 0.5, 0.75) and ceramic materials based on them. The microhardness of the ceramic samples was measured and the effect of heterovalent substitution of P5+↔Ge4+ on the mechanical properties of the studied samples was determined. The synthesis of initial Ag6PS5I and necessary for doping Ag7GeS5I was performed from the high purity elemental components (Ag, P, Ge, S) and previously synthesized binary AgI. Solid solutions of the Ag6+xP1-xGexS5I (x = 0.25, 0.5, 0.75) composition were synthesized from previously synthesised Ag6PS5I and Ag7GeS5I taken in stoichiometric amounts by a direct one-temperature method. As a result, polycrystalline bulk alloys of Ag6+xP1-xGexS5I solid were obtained. Microcrystalline Ag6+xP1-xGexS5I powders were obtained from the synthesized polycrystalline alloys by mechanical grinding (agate mortar). The powders were sieved through sieves with a pore size of 20 μm and 10 μm to obtain a fraction of crystallites with a size of 10-20 μm. The phase composition of the obtained powders was studied by means of XRD method. It has been found that the powder patterns of the studied samples are cha­racterized by the presence only of one system of reflexes corresponding to the face-centred cubic cell with SG F-43m. The resulting micropowders were pressed (P ~ 400 MPa) in the form of discs and annealed at 650 °С in vacuum quartz ampoules. The microhardness of the ceramics obtained in this way was measured by the Vickers method. For all ceramics, a decrease in the microhardness H is observed with an increase in the load P. This indicates that a direct size effect is observed for ceramics made on the basis of solid solutions of Ag6+xP1-xGexS5I. The obtained values of microhardness at a load of P > 1–1.5 N are independent of the load, which indicates the achievement of intrinsic hardness. Meyer's law was used to further analyze the microhardness and size effect of Ag6+xP1-xGexS5I solid solutions. The obtained values of the Meyer's index for Ag6+xP1-xGexS5I based ceramics are in the range n = 1.78 ÷ 1.81, which demonstrates the implementation of a direct size effect in these samples and indicates that the studied ceramics belong to soft materials. The concentration dependence of the microhardness indicates that an increase in the Germanium content in ceramic materials of solid solutions of Ag6+xP1-xGexS5I leads to a decrease in the microhardness of the materials.  
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