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使用含有聚合物微球的陶瓷/莰烯悬浮液制备的双尺度孔隙率氧化铝结构

Dual-Scale Porosity Alumina Structures Using Ceramic/Camphene Suspensions Containing Polymer Microspheres.

作者信息

Lee Hyun, Jeon Jong-Won, Koh Young-Hag, Kim Hyoun-Ee

机构信息

Institute of Global Health Technology Research, Korea University, Seoul 02841, Korea.

School of Biomedical Engineering, Korea University, Seoul 02841, Korea.

出版信息

Materials (Basel). 2022 May 29;15(11):3875. doi: 10.3390/ma15113875.

Abstract

This study demonstrates the utility of thermo-regulated phase separable alumina/camphene suspensions containing poly(methyl methacrylate) (PMMA) microspheres as porogens for the production of multi-scale porosity structures. The homogeneous suspension prepared at 60 °C could undergo phase separation during freezing at room temperature. This process resulted in the 3D networks of camphene crystals and alumina walls containing PMMA microspheres. As a consequence, relatively large dendritic pores with several tens of microns size could be created as the replica of frozen camphene crystals. In addition, after the removal of PMMA microspheres via heat-treatment, micron-sized small spherical pores could be generated in alumina walls. As the PMMA content with respect to the alumina content increased from 0 vol% to 40 vol%, while the camphene content in the suspensions was kept constant (70 vol%), the overall porosity increased from 45.7 ± 0.5 vol% to 71.4 ± 0.5 vol%. This increase in porosity is attributed to an increase in the fraction of spherical pores in the alumina walls. Thus, compressive strength decreased from 153 ± 18.3 MPa to 33 ± 7.2 MPa. In addition, multi-scale porosity alumina objects with a honeycomb structure comprising periodic hexagonal macrochannels surrounded by dual-scale porosity walls were constructed using a 3D plotting technique.

摘要

本研究证明了含有聚甲基丙烯酸甲酯(PMMA)微球的热调节相分离氧化铝/莰烯悬浮液作为致孔剂用于制备多尺度孔隙结构的实用性。在60°C下制备的均匀悬浮液在室温冷冻过程中会发生相分离。这个过程导致了含有PMMA微球的莰烯晶体和氧化铝壁的三维网络结构。因此,作为冷冻莰烯晶体的复制品,可以形成尺寸为几十微米的相对较大的树枝状孔隙。此外,通过热处理去除PMMA微球后,在氧化铝壁中可以产生微米级的小球形孔隙。随着相对于氧化铝含量的PMMA含量从0体积%增加到40体积%,而悬浮液中的莰烯含量保持恒定(70体积%),总体孔隙率从45.7±0.5体积%增加到71.4±0.5体积%。孔隙率的这种增加归因于氧化铝壁中球形孔隙比例的增加。因此,抗压强度从153±18.3MPa降低到33±7.2MPa。此外,使用三维绘图技术构建了具有蜂窝结构的多尺度孔隙氧化铝物体,该结构由被双尺度孔隙壁包围的周期性六边形宏观通道组成。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/457c/9181552/1f581ee1851f/materials-15-03875-g001.jpg

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