Ultrahigh hardness Li 2 O–MgO–Al 2 O 3 –SiO 2 glass–ceramics containing multiphase nanocrystals

材料科学 差示扫描量热法 结晶 玻璃化转变 扫描电子显微镜 拉曼光谱 陶瓷 维氏硬度试验 玻璃陶瓷 Crystal(编程语言) 分析化学(期刊) 矿物学 复合材料 化学工程 微观结构 聚合物 光学 化学 物理 工程类 热力学 程序设计语言 色谱法 计算机科学
作者
Lina Chen,Tengfei Sun,Zhenbang Hao,Jun Xie,Jihong Zhang,Jianjun Han,Mingzhong Wang,Xiuzhen Cui,Xinhui Liang
出处
期刊:Journal of the American Ceramic Society [Wiley]
卷期号:105 (12): 7614-7624 被引量:21
标识
DOI:10.1111/jace.18689
摘要

Abstract Li 2 O–Al 2 O 3 –SiO 2 ‐based glass–ceramics containing nanocrystals have attracted much attention due to their low expansion coefficient, good mechanical properties, for different applications, such as fire‐safe glass, dental materials, and electronic devices protectors. In current research, ultrahigh hardness Li 2 O–MgO–Al 2 O 3 –SiO 2 glass–ceramics were prepared by conventional melt‐quenching and subsequent heat‐treatment method. MgO was introduced via Li 2 O substitution to change glass crystallization and mechanical properties. The differential scanning calorimetry analysis indicated the glass transition and crystallization temperatures increased with MgO/Li 2 O ratio increase, for better glass network connectivity from Raman spectra analysis. In addition, the main crystal phase changed from Li 2 SiO 5 and LiAlSi 4 O 10 , to the combination of LiAlSi 2 O 6 and MgAl 2 Si 4 O 12 , and finally to MgAl 2 Si 4 O 12 . The Vickers hardness of glass–ceramics was highly dependent on MgO/Li 2 O ratios in glass components and heat‐treatment temperatures, corresponding with the crystal phases in glass–ceramics. The highest hardness could reach 9.34 GPa, which was much higher than traditional silicate glass–ceramics. The scanning electron microscope images confirmed the crystal diameters that varied from 30 to 100 nm and were determined by MgO content. Transmission electron microscope images and energy‐dispersive spectroscopy mapping also confirmed the precipitation of multiphase nanocrystals in glass matrix. The changes of glass structure, and corresponding crystal combinations in glass–ceramics resulting from MgO introduction, were responsible for the ultrahigh hardness glass.
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