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无压放电等离子烧结法快速合成BaTa(O,N)3纳米粉体
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国防科技大学空天科学学院新型陶瓷纤维及其复合材料重点实验室

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TG148

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国家自然科学基金青年基金项目资助51702361


Rapid Synthesis of BaTa(O,N)3 Nano-powder byPressure-less Spark Plasma Sintering
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Science and Technology on Advanced Ceramics Fibers and Composites Laboratory,College of Aerospace Science and Engineering,National University of Defense Technology

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    摘要:

    以尿素为氮源,采用无压放电等离子烧结工艺于数分钟内一步合成了BaTa(O,N)3粉体。研究了尿素含量、升温速率、合成温度和保温时间对产物纯度的影响,对优化工艺所制得粉体的组成、结构和微观形貌进行了表征分析。结果表明,原料中过量的尿素和适当的合成温度有利于粉体合成反应的正向进行;较快的升温速率与适中的保温时间能显著提高BaTa(O,N)3粉体的纯度;在尿素含量为8倍摩尔计量比、升温速率300℃/min、合成温度1000℃、保温时间0~1min条件下得到的BaTa(O,N)3纳米粉体平均粒径为50~150 nm,Ba、Ta、O、N四种元素分布均匀,且粉体具有很高的纯度。

    Abstract:

    BaTa(O,N)3 nano-powder was fabricated within minutes with urea as nitrogen source and pressure-less spark plasma sintering technique as a calcination tool. The effects of urea content, heating rate, synthesis temperature and dwell time on the purity of the products were studied and optimized. Experimental results show that excessive urea and proper synthesis temperature benefit the synthesis reaction. The purity of BaTa(O,N)3 powder can be significantly improved by applying a higher heating rate and an intermediate dwell time. Based on the processing optimization of 8 times molar(urea content), 300℃/min(heating rate), 1000℃(synthesis temperature) and 0~1min(dwell time), the obtained BaTa(O,N)3 powder possesses an average particle size of 50~150nm, a uniform Ba/Ta/O/N element as well as a good purity.

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叶施亚,曾良,孙哲,李俊生,李端,曹峰.无压放电等离子烧结法快速合成BaTa(O, N)3纳米粉体[J].稀有金属材料与工程,2021,50(7):2478~2485.[YE Shi-Ya, ZENG Liang, SUN Zhe, LI Jun-Sheng, LI Duan, CAO Feng. Rapid Synthesis of BaTa(O, N)3 Nano-powder byPressure-less Spark Plasma Sintering[J]. Rare Metal Materials and Engineering,2021,50(7):2478~2485.]
DOI:10.12442/j. issn.1002-185X.20200570

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历史
  • 收稿日期:2020-08-05
  • 最后修改日期:2020-09-16
  • 录用日期:2020-09-18
  • 在线发布日期: 2021-08-09
  • 出版日期: 2021-07-31