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首页> 外文期刊>ACS applied materials & interfaces >Additive Manufacturing of Mechanically Isotropic Thin Films and Membranes via Microextrusion 3D Printing of Polymer Solutions
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Additive Manufacturing of Mechanically Isotropic Thin Films and Membranes via Microextrusion 3D Printing of Polymer Solutions

机译:通过聚合物溶液微鳞3D印刷的机械各向同性薄膜和膜的添加剂制造

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摘要

Polymer extrusion additive manufacturing processes, such as fused filament fabrication (FFF), are now being used to explore the fabrication of thin films and membranes. However, the physics of molten polymer extrusion constrains achievable thin film properties (e.g., mechanical isotropy), material selection, and spatial control of film composition. Herein, we present an approach for fabrication of functional polymer thin films and membranes based on the microextrusion printing of polymer solutions, which we refer to as "solvent-cast printing" (SCP). Constructs fabricated via SCP exhibited a 43% reduction in anisotropy of tensile strength relative to those fabricated using FFF. The constructs fabricated via SCP exhibited a lesser extent of visible layering defects relative to those fabricated by FFF. Further, the swelling dynamics of the films varied depending on the membrane fabrication technique (i.e., SCP vs manual drop casting). The opportunity for expanding material selection relative to FFF processes was demonstrated by printing poly(benzimidazole), a high-performance thermoplastic with high glass transition temperatures (T-g similar to 400 degrees C). Results from this work indicate that our new approach could facilitate the manufacture of mechanically isotropic thin films and membranes using currently unprintable high-performance thermoplastics.
机译:现在,聚合物挤出添加剂制造方法,例如熔丝丝制造(FFF),现在用于探索薄膜和膜的制造。然而,熔融聚合物挤出物理学限制可实现的薄膜特性(例如,机械各向同性),材料选择和薄膜组合物的空间控制。这里,我们提出了一种基于聚合物溶液的微鳞片印刷制备功能性聚合物薄膜和膜的方法,这是指“溶剂浇铸印刷”(SCP)。通过SCP制造的构建体表现出相对于使用FFF制造的那些抗拉强度的各向异性降低43%。通过SCP制造的构建体具有相对于由FFF制造的那些的可见层状缺陷的较小程度。此外,薄膜的肿胀动力学根据膜制造技术(即,SCP VS手动铸造)而变化。通过印刷聚(苯并咪唑),通过印刷聚(苯并咪唑),具有高玻璃化转变温度的高性能热塑性塑料(具有400℃)的高性能热塑性塑料来展示相对于FFF工艺进行膨胀的机会。这项工作的结果表明,我们的新方法可以促进使用目前未印刷的高性能热塑性塑料制造机械各向同性薄膜和膜。

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