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用于塑造多种材料的盐状颗粒聚丙烯酰胺牺牲模具的3D打印。

3D printing of salt-like granular polyacrylamide as sacrificial molds for shaping versatile materials.

作者信息

Si Yejia, Sun Zhuo, Zhao Qian, Xie Tao, Wu Jingjun

机构信息

Ningbo Innovation Center, Zhejiang University, Ningbo, China.

State Key Laboratory of Chemical Engineering, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, China.

出版信息

Nat Commun. 2025 Aug 5;16(1):7177. doi: 10.1038/s41467-025-62674-1.

Abstract

Digital light processing 3D printing is a powerful manufacturing technology for shaping materials into complex geometries with high resolution. However, the rheological and chemical requirements for printing limit the use of materials to photoactive resins. Here, we propose a versatile manufacturing platform for constructing versatile materials using DLP-printed water-soluble granular polyacrylamide as sacrificial molds. The polymerization-induced phase separation during printing results in a close packed granular geometry with intrinsic micropores, which greatly accelerates the dissolution rate of polyacrylamide. Combined with precise control over the molecular weight, this salt-like sacrificial mold can be fully dissolved in neutral water at room temperature within 30 min. Furthermore, significant surface oxygen inhibition promotes the leveling and spreading of liquid resin on the cured part surfaces, achieving a printing speed of 375 mm/h in a top-down printer. Due to the mild conditions for mold removal, complex-shaped architectures can be created from a variety of compositions, including temperature-sensitive low-melting alloys, alkaline-degradable polyesters, as well as widely used materials such as silicone rubber, polyurethane, polyolefin elastomer, and epoxy. Considering the fast mold dissolution rate and mild dissolution conditions, the present platform represents a potential low-cost, and universal indirect 3D printing method for shaping versatile materials.

摘要

数字光处理3D打印是一种强大的制造技术,可将材料成型为具有高分辨率的复杂几何形状。然而,打印所需的流变学和化学条件限制了材料的使用范围,只能使用光活性树脂。在此,我们提出了一种通用的制造平台,该平台使用数字光处理打印的水溶性颗粒状聚丙烯酰胺作为牺牲模具来构建多种材料。打印过程中的聚合诱导相分离产生了具有固有微孔的紧密堆积颗粒几何形状,这极大地加速了聚丙烯酰胺的溶解速率。结合对分子量的精确控制,这种盐状牺牲模具在室温下可在30分钟内完全溶解于中性水中。此外,显著的表面氧抑制作用促进了液态树脂在固化部件表面的平整和铺展,在自上而下的打印机中实现了375毫米/小时的打印速度。由于脱模条件温和,可以从多种成分中制造出复杂形状的结构,包括温度敏感的低熔点合金、碱可降解聚酯以及广泛使用的材料,如硅橡胶、聚氨酯、聚烯烃弹性体和环氧树脂。考虑到快速的模具溶解速率和温和的溶解条件,本平台代表了一种潜在的低成本、通用间接3D打印方法,用于成型多种材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/702f/12325708/34cd3c92d971/41467_2025_62674_Fig1_HTML.jpg

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