State Key Laboratory of Chemical Engineering, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, China.
ZJU-Hangzhou Global Scientific and Technological Innovation Center, Zhejiang University, Hangzhou, China.
Nature. 2024 Jul;631(8022):783-788. doi: 10.1038/s41586-024-07588-6. Epub 2024 Jul 3.
Three-dimensional (3D) printing has emerged as an attractive manufacturing technique because of its exceptional freedom in accessing geometrically complex customizable products. Its potential for mass manufacturing, however, is hampered by its low manufacturing efficiency (print speed) and insufficient product quality (mechanical properties). Recent progresses in ultra-fast 3D printing of photo-polymers have alleviated the issue of manufacturing efficiency, but the mechanical performance of typical printed polymers still falls far behind what is achievable with conventional processing techniques. This is because of the printing requirements that restrict the molecular design towards achieving high mechanical performance. Here we report a 3D photo-printable resin chemistry that yields an elastomer with tensile strength of 94.6 MPa and toughness of 310.4 MJ m, both of which far exceed that of any 3D printed elastomer. Mechanistically, this is achieved by the dynamic covalent bonds in the printed polymer that allow network topological reconfiguration. This facilitates the formation of hierarchical hydrogen bonds (in particular, amide hydrogen bonds), micro-phase separation and interpenetration architecture, which contribute synergistically to superior mechanical performance. Our work suggests a brighter future for mass manufacturing using 3D printing.
三维(3D)打印作为一种极具吸引力的制造技术,其独特之处在于能够制造出具有复杂几何形状的定制化产品。然而,其大规模制造的潜力受到制造效率(打印速度)低和产品质量(机械性能)不足的限制。最近在光聚合超快 3D 打印方面的进展缓解了制造效率的问题,但典型打印聚合物的机械性能仍远远落后于传统加工技术所能达到的水平。这是因为打印要求限制了分子设计以实现高机械性能。在这里,我们报告了一种 3D 光可打印的树脂化学,它可以得到一种弹性体,其拉伸强度为 94.6 MPa,韧性为 310.4 MJ m,这两个数值都远远超过任何 3D 打印弹性体。从机理上讲,这是通过打印聚合物中的动态共价键实现的,这些键允许网络拓扑结构的重新配置。这有利于形成分层氢键(特别是酰胺氢键)、微相分离和互穿结构,它们协同作用,从而具有优异的机械性能。我们的工作为使用 3D 打印进行大规模制造带来了更光明的前景。