固溶体
材料科学
位阻效应
微观结构
三元运算
相(物质)
组态熵
化学工程
陶瓷
晶体结构
最大相位
金属
同种类的
相图
六方晶系
热压
固溶强化
热力学
格子(音乐)
工作(物理)
立方氧化锆
熵(时间箭头)
物理化学
同质性(统计学)
六角相
晶格常数
结晶学
矿物学
紧迫的
化学成分
作者
Nick Goossens,Innocent Ehikhioya,Zahid Anwer,R. Erni,Michael Stuer,Konstantina Lambrinou,Jozef Vleugels
标识
DOI:10.1016/j.jeurceramsoc.2026.118273
摘要
The MAX phases constitute a family of atomically layered ternary carbides/nitrides with hexagonal structure (space group P6 3 /mmc ) applauded for their compositional versatility, which is demonstrated by the easy formation of solid solutions with varying chemical complexity. Intentionally tailoring chemically complex MAX phase solid solutions enables the production of materials with tuneable properties vis-à-vis the requirements of the targeted application(s). This work synthesised high-purity (Ti,V,Zr,Nb,Hf) 2 (Al,Sn)C and (Ti,Zr,Nb,Hf,Ta) 2 (Al,Sn)C MAX phase solid solutions by reactive hot pressing metal hydride-based powder feedstocks at 1450 °C, also elucidating their elemental-diffusion-limited, complex formation mechanism. The hydrogenated, milled, and sieved powder feedstocks facilitated the formation of damage-tolerant ceramics with homogeneous microstructures and minute impurities. Sterically balanced M- and A-site elemental occupancies alleviated lattice distortions, whilst increasing the configurational entropy of the produced MAX phase compounds further enhanced their thermodynamic stability.
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