High-strength, multifunctional and 3D printable mullite-based porous ceramics with a controllable shell-pore structure

Feiyue Yang , Shuang Zhao , Guobing Chen , Kunfeng Li , Zhifang Fei , Paul Mummery , Zichun Yang
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引用次数: 2

Abstract

The quest for lightweight and functional materials poses stringent requirements on mechanical performance of porous materials. However, the contradiction between high strength and elevated porosity of porous materials severely limits their application scenarios in emerging fields. Herein, high-strength multifunctional mullite-based porous ceramic monoliths were fabricated utilizing waste fly ash hollow microspheres (FAHMs) by the protein gelling technique. Owing to their unique shell-pore structure inspired by shell-protected biomaterials, the monoliths with porosity of 54.69%–70.02% exhibited a high compressive strength (32.3–42.9 ​MPa) which was 2–5 times that of mullite-based porous ceramics with similar density reported elsewhere. Moreover, their pore structure and properties could be tuned by regulation of the particle size and content of the FAHMs, and the resultant monoliths demonstrated superior integrated performances for multifunctional applications, such as broadband sound insulation, efficient thermal insulation, and high-temperature fire resistance (>1300 ​°C). On this basis, mullite-based porous ceramic lattices (porosity 68.28%–84.79%) with a hierarchical porous structure were successfully assembled by direct ink writing (DIW), which exhibited significantly higher compressive strength (3.02–10.77 ​MPa) than most other ceramic lattices with comparable densities. This unique shell-pore structure can be extended to other porous materials, and our strategy paves a new way for cost-effective, scalable and green production of multifunctional materials with well-defined microstructure.

Abstract Image

具有可控壳孔结构的高强度、多功能和可3D打印的莫来石基多孔陶瓷
对轻质和功能性材料的追求对多孔材料的机械性能提出了严格的要求。然而,多孔材料的高强度与高孔隙率之间的矛盾严重限制了其在新兴领域的应用。本文以粉煤灰空心微球(FAHMs)为原料,采用蛋白胶凝技术制备了高强度多功能莫来石基多孔陶瓷单体材料。由于其独特的壳孔结构受壳保护生物材料的启发,孔隙率为54.69% ~ 70.02%的单块体具有较高的抗压强度(32.3 ~ 42.9 MPa),是其他类似密度的莫来石基多孔陶瓷的2-5倍。此外,它们的孔隙结构和性能可以通过调节fahm的粒径和含量来调节,并且所得到的单体具有优异的综合性能,可用于多功能应用,如宽带隔音,高效隔热和高温耐火(>1300°C)。在此基础上,通过直接墨水书写(direct ink writing, DIW)法制备了孔隙率为68.28% ~ 84.79%、具有分层多孔结构的莫来石基多孔陶瓷晶格,其抗压强度(3.02 ~ 10.77 MPa)明显高于其他密度相同的陶瓷晶格。这种独特的壳孔结构可以扩展到其他多孔材料,我们的策略为具有明确微观结构的多功能材料的成本效益,可扩展和绿色生产铺平了新的道路。
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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CiteScore
33.30
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