State Key Laboratory of Chemical Engineering, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou 310027, People's Republic of China.
Shanxi-Zheda Institute of Advanced Materials and Chemical Engineering, Shanxi, Taiyuan, People's Republic of China.
Bioinspir Biomim. 2021 Dec 16;17(1). doi: 10.1088/1748-3190/ac3216.
Porous ceramic materials are attractive candidates for thermal insulation. However, effective ways to develop porous ceramics with high mechanical and thermal insulation performances are still lacking. Herein, an anisotropic porous silica ceramic with hierarchical architecture, i.e. long-range aligned lamellar layers composed of hollow silica spheres, was fabricated applying a facile bidirectional freezing method. Due to such anisotropic structure, the as-prepared porous silica ceramic displays low thermal conductivity across the layers and high compressive strength along the layers. Additionally, the anisotropic porous silica ceramic is fire-resistant. As a proof of concept, a mini-house was roofed with the anisotropic porous silica ceramic, showing that the indoor temperature could be stabilized against environmental temperature change, making this porous ceramic a promising candidate for energy efficient buildings and other industrial applications. Our study highlights the possibility of combining intrinsically exclusive properties in engineering materials through constructing biomimetic porous structures.
多孔陶瓷材料是隔热的理想候选材料。然而,开发具有高机械和隔热性能的多孔陶瓷的有效方法仍然缺乏。在此,通过一种简单的双向冷冻方法,制备了具有分级结构的各向异性多孔硅陶瓷,即由空心硅球组成的长程取向的层状结构。由于这种各向异性结构,所制备的多孔硅陶瓷在层间具有低导热系数和在层内具有高抗压强度。此外,各向异性多孔硅陶瓷具有耐火性。作为概念验证,一个小型房屋的屋顶采用了各向异性多孔硅陶瓷,结果表明,室内温度可以稳定在环境温度变化范围内,这使得多孔陶瓷成为节能建筑和其他工业应用的有前途的候选材料。我们的研究强调了通过构建仿生多孔结构将工程材料中内在排斥的特性结合起来的可能性。