材料科学
介孔二氧化硅
介孔材料
溶胶凝胶
纳米技术
3D打印
化学工程
有机化学
复合材料
催化作用
化学
工程类
作者
Johanna Gluns,Lucy Zhao,Dieter Spiehl,Joanna J. Mikolei,Raheleh Pardehkhorram,Marcelo Ceolı́n,Annette Andrieu‐Brunsen
标识
DOI:10.1002/adfm.202405511
摘要
Abstract Mesoporous ceramic materials used in applications such as catalysis, filtration, or sensing, are usually hierarchically structured. Thereby, their structural hierarchy is often inherently related to the manufacturing methods and cannot be independently locally designed along all length scales. This study combines light‐based additive manufacturing and bottom‐up light‐induced self‐assembly (LISA) sol‐gel chemistry to engineer hierarchically structured porous silica from the nanoscale to the macroscopic object geometry. A LISA‐based printing solution that enables printing of ordered mesoporous silica with geometrically complex shapes by using a commercially available digital light processing (DLP)‐based 3D printer is presented. This approach exploits the self‐assembly process of block copolymer mesopore templates, such as Pluronic P123, and hydrolysis and condensation of silica precursors upon irradiation in the 3D printer to shape mesoporous silica objects. Furthermore, different resins are added to the LISA solution to print 3D silica‐resin objects. Mesoporous silica objects up to 10 mm in size, consisting of ordered mesopores with diameters around 5 nm and having high specific surface areas of ≈400 m 2 g −1 are successfully printed with a fast and easy post‐processing.
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