Formation Mechanism and Structural Characterization of NaAl11O17 Based on Solid-State Reaction

IF 2.1 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY JOM Pub Date : 2024-08-06 DOI:10.1007/s11837-024-06801-1
Jihao Zhang, Xiaolin Pan, Zhongyang Lv, Haiyan Yu, Ganfeng Tu
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Abstract

As an aluminum rich mineral, NaAl11O17 is widely found in the by-products of the metallurgical industry, and it can be used as an alkali solidification phase in the harmless treatment of alkali-containing solid wastes due to its low formation temperature and strong stability. The formation mechanism, kinetics and structural characterization of NaAl11O17 were systemically studied based on the solid-state reaction in Na2CO3-Al2O3 system, and the reaction conditions that prevent the formation of NaAl11O17 were also established. The results show that NaAl11O17 is more feasible to form than NaAlO2 when the Al2O3-to-Na2O molar ratio (A/N) is > 11.0, and it almost completely transforms into NaAlO2 when the A/N ratio decreases to 1.0. The formation kinetics of NaAl11O17 corresponds to the diffusion-controlled model of a 3D Ginstling-Brounstein model in the temperature range of 1000–1200°C. The conversion efficiency of NaAl11O17 is controlled by the phase boundary reaction model. Furthermore, the apparent activation energy and corresponding kinetic equation of NaAl11O17 formation were determined to be 46.89 kJ/mol and k = 1 × exp[–46.89/RT], respectively. The crystal structure characterization reveals that NaAl11O17 is formed by the doping of Na+ into [AlO4] tetrahedron to form a solid solution.

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基于固态反应的 NaAl11O17 形成机理与结构表征
作为一种富铝矿物,NaAl11O17广泛存在于冶金工业的副产品中,由于其形成温度低、稳定性强,可作为碱固相用于含碱固体废弃物的无害化处理。基于 Na2CO3-Al2O3 体系中的固态反应,系统研究了 NaAl11O17 的形成机理、动力学和结构特征,并建立了阻止 NaAl11O17 形成的反应条件。结果表明,当 Al2O3 与 Na2O 的摩尔比(A/N)为 11.0 时,NaAl11O17 比 NaAlO2 更容易形成,当 A/N 比降至 1.0 时,NaAl11O17 几乎完全转化为 NaAlO2。在 1000-1200°C 的温度范围内,NaAl11O17 的形成动力学符合三维 Ginstling-Brounstein 模型的扩散控制模型。NaAl11O17 的转化效率由相界反应模型控制。此外,还确定了 NaAl11O17 形成的表观活化能和相应的动力学方程分别为 46.89 kJ/mol 和 k = 1 × exp[-46.89/RT]。晶体结构表征表明,NaAl11O17 是由 Na+ 掺杂到[AlO4]四面体中形成的固溶体。
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来源期刊
JOM
JOM 工程技术-材料科学:综合
CiteScore
4.50
自引率
3.80%
发文量
540
审稿时长
2.8 months
期刊介绍: JOM is a technical journal devoted to exploring the many aspects of materials science and engineering. JOM reports scholarly work that explores the state-of-the-art processing, fabrication, design, and application of metals, ceramics, plastics, composites, and other materials. In pursuing this goal, JOM strives to balance the interests of the laboratory and the marketplace by reporting academic, industrial, and government-sponsored work from around the world.
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