材料科学
多孔性
微流控
3D打印
乳状液
微型多孔材料
挤压
墨水池
琼脂糖
纳米技术
多孔介质
复合材料
化学工程
工程类
化学
色谱法
作者
Martina Marcotulli,Maria Celeste Tirelli,Marina Volpi,Jakub Jaroszewicz,Chiara Scognamiglio,Piotr Kasprzycki,Karol Karnowski,Wojciech Święszkowski,G. Ruocco,Marco Costantini,Gianluca Cidonio,Andrea Barbetta
标识
DOI:10.1002/admt.202201244
摘要
Abstract In the last decade, 3D printing systems have greatly evolved both in terms of processable materials and printing resolutions, becoming a top seed technology for many academic and industrial applications. Nevertheless, manufacturing polymeric materials characterized by a trabecular porosity and functionally graded architecture—where both the local porosity and chemical composition of the matrix change in the 3D space—through additive platforms remains an open technical challenge. In this study, a 3D extrusion printing strategy to tackle this problem is presented. The proposed systems are based on a flow‐focusing microfluidic printing head—to continuously generate oil‐in‐water emulsion inks—and on an agarose fluid–gel used as a temporary support bath for the deposition of the photo‐curable emulsion inks. It is demonstrated that through this strategy one can design a priori and build with high accuracy both discontinuous and continuous functionally graded polymeric foams, where both the density and composition of the materials could be varied independently within arbitrarily complex 3D architectures. This study provides new means for the synthesis of microporous, polymeric FGMs which could find applications ranging from interface tissue engineering to automotive and construction industries.
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