4.7 Article

Multi-directional freeze casting of porous ceramics with bone-inspired microstructure

期刊

MATERIALS & DESIGN
卷 224, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.matdes.2022.111344

关键词

Freeze casting; Bioinspired materials; Porous ceramics; Mechanical properties

资金

  1. NUS Start-up Project [A-0009062-01-00]
  2. NUS-SIMTech Collaborative Research Project ''Freeze Forming of Nature Inspired Hierarchical Lightweight Composites
  3. NUS R&G Postdoc Fellowship Program [A-0000065-87-00]

向作者/读者索取更多资源

A novel multi-directional freeze casting technique inspired by cancellous bone growth pattern was proposed to prepare highly mechanically efficient porous ceramics. The ceramics demonstrated high porosity and strength in all 3D spatial directions, showcasing the remarkable controllability of multi-directional freeze casting in hierarchical structures.
Porous ceramics are favored in a multitude of applications, such as filters, catalyst supports, and tissue engineering scaffolds. However, conventional fabrication techniques find it particularly challenging to preserve sufficient mechanical strength in highly porous ceramics. Although unidirectional freeze casting can fabricate porous ceramics with high strength vertically, the strength in other directions is inadequate due to a lack of lateral structural control. Herein, inspired by the cancellous bone, we propose a novel multi-directional freeze casting technique to prepare highly mechanically efficient porous ceramics. A multi-directional temperature field is ingeniously designed to mimic the stress-responsive growth pattern of the cancellous bone. To further the lateral structural control, ceramic fibers are incorporated to form mineral bridging. In this process, alumina-mullite composite ceramics are prepared with hierarchical structures, including micro-level multi-oriented struts, sub-micro-level interlamellar bridges and nano-level eutectic phases. They endow the ceramics with high porosity (similar to 75%) and high strength in all 3D spatial directions (8.4-20.1 MPa), while effectively preventing the catastrophic brittle failure. Therefore, the mechanically enhanced porous ceramics demonstrate the remarkable controllability of multi-directional freeze casting in hierarchical structures. Also, our work opens up a new horizon for fabricating highly mechanically efficient porous materials, including hierarchically structured biomimetic ceramics. (c) 2022 The Author(s). Published by Elsevier Ltd. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

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