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A comparative study of synthesis and spark plasma sintering of YAG nano powders by different co-precipitation methods

机译:不同共沉淀法对YAG纳米粉末合成及火花血浆烧结的比较研究

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摘要

Pure yttrium-aluminum-garnet (YAG) nano particles were synthesized via normal and reverse co-precipitation methods using nitrate starting solutions and ammonium hydrogen carbonate (AHC) as precipitator agent. The impact of titration method on the phase evolution, thermal behavior, precipitate's composition, morphology and chemical bonds of powders were studied by XRD, TG-DTA, FTIR, FESEM, TEM, EDS and BET analysis. The results revealed that in the normal method, the precipitates were composed of relatively dense particles compared with more homogenous fluffy precipitates with higher carbonate content obtained by the reverse method. The precursors achieved by the reverse method formed less agglomerated and smaller size YAG powders after calcination at 900 degrees C. Calcined nano powders were processed by spark plasma sintering (SPS) technique at 1350 degrees C for 10 min without any sintering aids or dispersive agents. The sintering of both powders led to a highly dense and fine submicron-structured YAG ceramic. However, the YAG ceramic produced by SPS of reverse co-precipitated nano powders showed higher transparency (43% at 680 nm and 58% in near-infrared range) and finer micro-structure (about 210 nm in grain size) as compared with normal co-precipitated nano particles.
机译:纯钇 - 铝 - 石榴石(YAG)纳米颗粒通过使用硝酸硝酸盐的起始溶液和碳酸氢铵(AHC)作为除尘剂而合成。通过XRD,TG-DTA,FTIR,FESEM,TEM,EDS和BET分析研究了滴定法对粉末相进化,热行为,沉淀的组合物,形态学和化学键的影响。结果表明,在正常方法中,与通过反向方法获得的更高碳酸酯含量的更均匀的蓬松沉淀物相比,沉淀物由相对致密的颗粒组成。通过反向方法实现的前体在900℃下煅烧后形成较少的附聚和更小的YAG粉末。通过火花等离子体烧结(SPS)技术在1350℃下加工煅烧的纳米粉末10分钟,没有任何烧结助剂或分散剂。两种粉末的烧结导致了高度密集,细小的亚微米结构的YAG陶瓷。然而,由反向共沉淀的纳米粉末产生的YAG陶瓷显示出更高的透明度(近红外范围为680nm,58%,58%),与正常相比,更细的微结构(粒度约210nm)共沉淀的纳米颗粒。

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