首页> 外文期刊>CrystEngComm >Single crystal growth of BaZrO3 from the melt at 2700 degrees C using optical floating zone technique and growth prospects from BaB2O4 flux at 1350 degrees C
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Single crystal growth of BaZrO3 from the melt at 2700 degrees C using optical floating zone technique and growth prospects from BaB2O4 flux at 1350 degrees C

机译:在1350摄氏度下,使用光学浮区技术和Bab2O4通量的光学浮区技术和生长前景,在2700摄氏度下从熔体的单晶生长。

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摘要

We report the growth of BaZrO3 single crystals by the optical floating zone technique and the investigation on its flux growth using BaB2O4 as a solvent. 6 mm long colorless and transparent single crystals were obtained with a mirror furnace without the need for post-treatment annealing. Its properties are determined and compared with those of two commercial crystals grown by the tri-arc Czochralski method. The chemical composition was investigated using glow discharge mass spectrometry (GDMS) and secondary ion mass spectrometry (SIMS), which indicate minor impurities of Sr, Hf, Ca and Ti, with maximal concentrations for Sr and Hf in the range of 0.3-0.5% at. The optical band gap determined by UV-visible spectroscopy is found to be similar to 4.8 eV and indicates the high quality of the BaZrO3 crystals grown by the optical floating zone technique. Raman spectroscopy at ambient conditions and at low temperatures down to 4.2 K reveals a relatively sharp second-order spectrum and does not reveal any structural phase transition. Prospective high-temperature solution growth using BaB2O4 self-flux was investigated and led to 150-200 mu m BaZrO3 crystals. This solvent opens the way to grow BaZrO3 at half its melting point by the flux method.
机译:我们通过光学浮区技术报告了Bazro3单晶的生长,并使用Bab2O4作为溶剂对其通量生长的研究。用镜面炉获得6毫米长无色透明的单晶,无需后处理后退火。确定其性质并与由三弧Czochralski方法生长的两种商业晶体的性质进行比较。使用辉光放电质谱(GDMS)和二次离子质谱(SIMS)研究了化学成分,其表示Sr,Hf,Ca和Ti的少量杂质,具有最大浓度的Sr和Hf在0.3-0.5%的范围内在。发现由UV可见光谱法测定的光带间隙类似于4.8eV,并表示由光学浮区技术生长的Bazro3晶体的高​​质量。环境条件下的拉曼光谱和低温下降至4.2K显示相对尖锐的二阶光谱,并且不显示任何结构相转变。研究了使用Bab2O4自助通量的前瞻性高温溶液生长,并导致150-200μmbazro3晶体。通过助焊法将这种溶剂开辟了将Bazro3生长的熔点。

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  • 来源
    《CrystEngComm》 |2019年第3期|共11页
  • 作者单位

    Univ Luxembourg Luxembourg Inst Sci &

    Technol Mat Res &

    Technol Dept 41 Rue Brill L-4422 Belvaux Luxembourg;

    CNRS UMR 5026 ICMCB F-33600 Pessac France;

    Univ Luxembourg Luxembourg Inst Sci &

    Technol Mat Res &

    Technol Dept 41 Rue Brill L-4422 Belvaux Luxembourg;

    Univ Luxembourg Luxembourg Inst Sci &

    Technol Mat Res &

    Technol Dept 41 Rue Brill L-4422 Belvaux Luxembourg;

    Univ Luxembourg Luxembourg Inst Sci &

    Technol Mat Res &

    Technol Dept 41 Rue Brill L-4422 Belvaux Luxembourg;

    Univ Warwick Dept Phys Coventry CV4 7AL W Midlands England;

    Univ Warwick Dept Phys Coventry CV4 7AL W Midlands England;

    Univ Paris Sud ICMMO CNRS UMR 8182 SP2M F-91405 Orsay France;

    Univ Paris Sud ICMMO CNRS UMR 8182 SP2M F-91405 Orsay France;

    CNRS UMR 5026 ICMCB F-33600 Pessac France;

    Univ Lorraine LMOPS EA 4423 2 Rue Edouard Belin F-57070 Metz France;

    FEE GmbH D-55743 Idar Oberstein Germany;

    CNRS UMR 5026 ICMCB F-33600 Pessac France;

    CNRS UMR 5026 ICMCB F-33600 Pessac France;

    Univ Luxembourg Luxembourg Inst Sci &

    Technol Mat Res &

    Technol Dept 41 Rue Brill L-4422 Belvaux Luxembourg;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;晶体学;
  • 关键词

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