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Optical properties of SPS-ed Y- and (Dy,Y)-α-sialon ceramics

机译:SPS-ed Y-和(Dy,Y)-α-sialon陶瓷的光学性能

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摘要

Y0.67Si9Al3ON15 and Dy0.4Y0.3Si8.85Al3.15O1.05N14.95 ceramics were prepared by Spark Plasma Sintering (SPS) with and without heat treatment at 1700°C for 7 h or 17 h, and their optical transmittance were investigated over the wavenumber range 4000–1500 cm−1. The results showed that the assemblages of the SPS-ed samples consisted of single crystallized α-sialon phase in both compositions. EDS analysis indicated that α-sialon was mainly stabilized by Dy3+ in the multi-cation (Dy,Y)-α-sialon composition. The SPS-ed specimens showed relatively high optical transmission properties, and the maximum transmittance reached around 65% at 2800 cm−1 for 0.5 mm thick specimens of both compositions. The 7 h heat treatment caused the formation of small amount of melilite phase, resulting in non-uniform microstructure and decrease in optical transmittance. Extended heat treatment for 17 h led to more homogenous microstructure and increased the transmittance to some extent. Less melilite was formed in the multi-cation (Dy,Y)-α-sialon composition than in the single cation Y-α-sialon after heat treatment, and the transmittance of (Dy,Y)-α-sialon was also higher than that of Y-α-sialon.
机译:Y0.67 Si9 Al3 ON15 和Dy0.4 Y0.3 Si8.85 Al3.15 S1.0N N14.95 陶瓷是通过火花等离子体烧结(SPS)在1700°C和7 h或17 h条件下进行热处理和不热处理而制备的,并研究了其在波数上的透光率。范围4000–1500 cm-1 。结果表明,在两种成分中,SPS-ed样品的组合物均由单晶α-赛隆相组成。 EDS分析表明,在多阳离子(Dy,Y)-α-赛隆组成中,α-赛隆主要由Dy3 +稳定。用SPS制成的样品显示出相对较高的透光率,两种成分的0.5 mm厚样品在2800 cm-1 时的最大透光率均达到65%左右。 7 h热处理导致形成少量的陨石相,导致微观结构不均匀并降低了透光率。延长的热处理时间17 h导致微观结构更加均匀,并在一定程度上提高了透射率。热处理后,多阳离子(Dy,Y)-α-硅铝氧氮组合物中形成的沸石少于单阳离子Y-α-硅铝氧氮的形成,并且(Dy,Y)-α-硅铝氧氮的透射率也高于Y-α-赛隆的

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  • 来源
    《Journal of Materials Science》 |2004年第20期|6257-6262|共6页
  • 作者单位

    The State Key Lab of High Performance Ceramics and Superfine Microstructure Shanghai Institute of Ceramics Chinese Academy of Sciences;

    The State Key Lab of High Performance Ceramics and Superfine Microstructure Shanghai Institute of Ceramics Chinese Academy of Sciences;

    The State Key Lab of High Performance Ceramics and Superfine Microstructure Shanghai Institute of Ceramics Chinese Academy of Sciences;

    Department of Inorganic Chemistry University of Stockholm;

    Department of Inorganic Chemistry University of Stockholm;

    School of Physics and Materials Engineering Monash University;

    The State Key Lab of High Performance Ceramics and Superfine Microstructure Shanghai Institute of Ceramics Chinese Academy of Sciences;

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