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Development of optical ceramic materials for infrared applications by optimizing sintering conditions

机译:通过优化烧结条件开发用于红外应用的光学陶瓷材料

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The authors developed production process of polycrystalline Zinc Sulfide (ZnS) materials which have been widely applied to windows and domes for infrared sensor systems. Commercially available ZnS powders of ca. 5 urn particle sizes were used as a starting material and Spark Plasma Sintering method (SPS) was applied to the powders for firing process. It was found that the densification of the sintered materials was inhibited by outgassing from ZnS powders during the sintering process (ca. 400 Celsius). Thermal desorption spectroscopy analyses revealed the components of outgassing, such as hydrogen sulfide, sulfur oxide and organic molecules. Based on these analyses, the optimum conditions on heating rate and starting temperature of uniaxial pressurization were investigated to remove the outgassing. The polycrystalline ZnS materials fired under the optimized SPS conditions have such characteristics as better transmittance than 65 % and good uniformity in both 3-5 urn and 8-12 um wavelength regions. These results show the importance of removing outgassing from starting materials.
机译:作者开发了多晶硫化锌(ZnS)材料的生产工艺,该工艺已广泛应用于红外传感器系统的窗户和圆顶。市售的约ZnS粉末。 5 ur大小的颗粒用作起始原料,并且将火花等离子烧结法(SPS)应用于粉末进行焙烧工艺。发现在烧结过程中(约400摄氏度),ZnS粉末的脱气抑制了烧结材料的致密化。热脱附光谱分析显示出气体的成分,例如硫化氢,氧化硫和有机分子。在这些分析的基础上,研究了加热速率和单轴加压起始温度的最佳条件,以消除脱气。在优化的SPS条件下烧制的多晶ZnS材料具有以下特点:透射率优于65%,并且在3-5微米和8-12微米波长范围内均具有良好的均匀性。这些结果表明从原料中去除除气的重要性。

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