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Toward Multiscale, Multimaterial 3D Printing
DOI:10.1002/adma.202314204.png)
摘要
En 中文
Biological materials and organisms possess the fundamental ability to self-organize, through which different components are assembled from the molecular level up to hierarchical structures with superior mechanical properties and multifunctionalities. These complex composites inspire material scientists to design new engineered materials by integrating multiple ingredients and structures over a wide range. Additive manufacturing, also known as 3D printing, has advantages with respect to fabricating multiscale and multi-material structures. The need for multifunctional materials is driving 3D printing techniques toward arbitrary 3D architectures with the next level of complexity. In this paper, the aim is to highlight key features of those 3D printing techniques that can produce either multiscale or multimaterial structures, including innovations in printing methods, materials processing approaches, and hardware improvements. Several issues and challenges related to current methods are discussed. Ultimately, the authors also provide their perspective on how to realize the combination of multiscale and multimaterial capabilities in 3D printing processes and future directions based on emerging research.
Keyword:
energy deposition
material extrusion
multimaterial 3D printing
multiscale 3D printing
photopolymerization
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期刊
IF:
26.8
论文数:
3.4W
被引数:
46.0W
机构
引用论文
Multi-material additive manufacturing: A systematic review of design, properties, applications, challenges, and 3D printing of materials and cellular metamaterials多材料增材制造: 材料和细胞超材料的设计,性能,应用,挑战和3D打印的系统回顾
MATERIALS & DESIGN
IF7.9
Multi-material Additive Manufacturing of Metamaterials with Giant, Tailorable Negative Poisson's Ratios
SCIENTIFIC REPORTS
IF3.9
3D-Printed Anisotropic Polymer Materials for Functional Applications用于功能应用的3d打印各向异性聚合物材料
ADVANCED MATERIALS
IF26.8

