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电子陶瓷用氧化钇的制备及其机制研究OA

Preparation and Mechanism of Yttrium Oxide for Electronic Ceramics

中文摘要英文摘要

研究了以氨水-碳酸氢铵两步沉淀法制备适用于工业化生产的电子陶瓷用氧化钇晶体,考察了料液浓度、沉淀剂浓度、表面活性剂添加量、反应温度、加料速度、搅拌速度、陈化方式及时间、前驱体焙烧方式及时间等因素对制备氧化钇粉体粒度的影响,并探讨了前驱体分解机制及其动力学.结果表明:采用硫化铵对99.9%的氧化钇提纯除杂,可有效去除金属杂质;在室温、Y(NO3)3溶液质量浓度100 g/L、NH4HCO3溶液质量浓度及滴加速度分别为200 g/L和6 mL/min、搅拌速度370 r/min、搅拌陈化时间1 h、表面活性剂添加量2.5%、微波加热干燥10 min、前驱体焙烧温度800 ℃和焙烧时间2 h最佳工艺条件下,可制备D50=1.018 μm、BET=31.32 m2/g的球状立方相Y2O3晶体,该晶体符合电子陶瓷用氧化钇粉体指标要求;前驱体碳酸钇分解生成氧化钇的过程与机制分析结果表明,Y2(CO3)3·2H2O经过Y2CO5中间态转化为Y2O3,前驱体经3个阶段分解转化为氧化钇,分解3个阶段的活化能分别为61.68、564.22、590.103 kJ/mol,对应的反应级数分别为1.836 9,0.896 4和0.972 2.该法可实现电子陶瓷用氧化钇工业化制备,整个流程操作简单,成本低,环保无污染,经济效益和社会效益显著,具有广阔的应用前景.

The preparation of yttrium oxide(Y2O3)crystals suitable for industrial production of electronic ceramics by a two-step precipitation method using ammonia water and ammonium bicarbonate was studied.The effects of solution concentration,precipitant concentration,surfactant addition amount,reaction temperature,feeding rate,stirring speed,aging method and time,and calcination method and time of the precursor on the particle size of the prepared Y2O3 powder were investigated.The decomposition mechanism and kinetics of the precursor were also explored.The results show that the use of ammonium sulfide to purify 99.9%of yttrium oxide can effectively remove metal impurities.Under the optimal conditions of room temperature,Y(NO3)2 solution mass concentration of 100 g/L,NH4HCO3 solution mass concentration and addition rate of 200 g/L and 6 mL/min,respectively,stirring speed of 370 r/min,aging time of 1 h,surfactant addition amount of 2.5%,microwave drying for 10 min,calcination temperature of 800℃,and calcination time of 2 h,spherical cubic Y2O3 crystals with D50=1.018 μm and BET=31.32 m2/g can be prepared,which meet the requirements of Y2O3 powder for electronic ceramics.The analysis of the decomposition process and mechanism of the precursor Y2(CO3)3·2H2O to Y2O3 indicates that Y2(CO3)3·2H2O is converted to Y2O3 through the intermediate state of Y2CO5.The decomposition of the precursor to Y2O3 occurs in three stages,with activation energies of 61.68,564.22,and 590.103 kJ/mol,and corresponding reaction orders of 1.836 9,0.896 4,and 0.972 2,respectively.The method can achieve industrial production of Y2O3 for electronic ceramics.The entire process is simple to operate,low-cost,environmentally friendly,and pollution-free,with significant economic and social benefits and broad application prospects.

程佳瑶;马升峰;张晓伟;候少春;冯伟;高凯

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矿业与冶金

电子陶瓷氧化钇制备两步沉淀分解机制

electronic ceramicsyttrium oxidepreparationtwo-step precipitationdecomposition mechanism

《湿法冶金》 2026 (2)

196-207,12

北方稀土项目(BFXT-2023-0034).

10.13355/j.cnki.sfyj.2026.02.009

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