Zirconia-containing glass-ceramics: From nucleating agent to primary crystalline phase

Adam Shearer, Maziar Montazerian, Binghui Deng, Jessica J. Sly, John C. Mauro
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Abstract

This article reviews promising studies on the design, manufacturing, microstructure, properties, and applications of glass-ceramics containing ZrO2 and relevant glass-ceramic matrix composites. After the addition of ZrO2 to a glass-ceramic composition, it can persist in the residual glassy phase, facilitate nucleation, and/or precipitate as ZrO2 or another zirconate crystalline phase. Also, ZrO2-reinforced or ZrO2-toughened glass-ceramics can be designed as composites. In this article, the term “ZrO2-containing glass-ceramics” encompasses all these scenarios in which ZrO2 is present. Such glass-ceramics offer a wide range of applications in modern industries, including but not limited to architecture, optics, dentistry, medicine, and energy. Since S. Donald Stookey's discovery of glass-ceramics in the early 1950s, the most important scientific efforts reported in the literature are reviewed. ZrO2 is commonly added to glass-ceramics to promote nucleation. As a result, the role of ZrO2 in structural modification of residual glass and stimulating the nucleation in glass-ceramic is first discussed. ZrO2 can also be designed into the main crystalline phase of glass-ceramics, contributing achieving super high fracture toughness above 4 MPa·m0.5. Experimental and computational studies are reviewed in detail to elucidate how the transformation toughening and other mechanisms help to achieve such high values of fracture toughness. Sintered and glass-ceramic matrix composites also show promise, where ZrO2 contributes to improved stability and mechanical properties. Finally, we hope this article will provoke interest in glass-ceramic materials in both the scientific and industrial communities so that their tremendous technological potential in developing, for example, tough, thermally stable, transparent, and biologically compatible materials can be realized more widely.

Abstract Image

含氧化锆的玻璃陶瓷:从成核剂到主晶相
本文回顾了有关含 ZrO2 的玻璃陶瓷及相关玻璃陶瓷基复合材料的设计、制造、微观结构、性能和应用的前景研究。在玻璃陶瓷组合物中添加 ZrO2 后,它可以在残余玻璃相中持续存在,促进成核,和/或沉淀为 ZrO2 或另一种锆酸结晶相。此外,还可将 ZrO2 增强或 ZrO2 增韧玻璃陶瓷设计为复合材料。在本文中,"含 ZrO2 玻璃陶瓷 "一词包含了所有这些存在 ZrO2 的情况。此类玻璃陶瓷在现代工业中有着广泛的应用,包括但不限于建筑、光学、牙科、医药和能源。本文回顾了自 20 世纪 50 年代初唐纳德-斯图基(S. Donald Stookey)发现玻璃陶瓷以来,文献中报道的最重要的科研工作。ZrO2 通常被添加到玻璃陶瓷中以促进成核。因此,本文首先讨论了 ZrO2 在残留玻璃的结构改性和刺激玻璃陶瓷成核方面的作用。ZrO2 还可被设计成玻璃陶瓷的主晶相,有助于实现 4 MPa-m0.5 以上的超高断裂韧性。详细回顾了实验和计算研究,以阐明转变增韧和其他机制是如何帮助实现如此高的断裂韧性值的。烧结基复合材料和玻璃陶瓷基复合材料也显示出良好的前景,其中 ZrO2 有助于提高稳定性和机械性能。最后,我们希望这篇文章能引起科学界和工业界对玻璃陶瓷材料的兴趣,从而更广泛地发挥它们在开发坚韧、热稳定、透明和生物兼容材料等方面的巨大技术潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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